Open Access

Feasibility analysis of wireless power delivery to implanted sensors of XLIF patients

, , , ,  and   
Sep 28, 2024

Cite
Download Cover

R. J. Mobbs, K. Phan, G. Malham, K. Seex and P. J. Rao, “Lumbar interbody fusion: techniques, indications and comparison of interbody fusion options including PLIF, TLIF, MI-TLIF, OLIF/ATP, LLIF and ALIF,” Journal of Spine Surgery, vol. 1, no. 1, p. 2–18, 2015. MobbsR. J. PhanK. MalhamG. SeexK. RaoP. J. “Lumbar interbody fusion: techniques, indications and comparison of interbody fusion options including PLIF, TLIF, MI-TLIF, OLIF/ATP, LLIF and ALIF,” Journal of Spine Surgery 1 1 2 18 2015 Search in Google Scholar

D. Hoy, C. Bain, G. Williams, L. March, P. Brooks, F. Blyth, A. Woolf, T. Vos and R. Buchbinder, “A systematic review of the global prevalence of low back pain,” Arthritis and Rheumatism, vol. 64, no. 6, pp. 2028–2037, 2012. HoyD. BainC. WilliamsG. MarchL. BrooksP. BlythF. WoolfA. VosT. BuchbinderR. “A systematic review of the global prevalence of low back pain,” Arthritis and Rheumatism 64 6 2028 2037 2012 Search in Google Scholar

J. W. Frymoyer, “Back pain and sciata,” The New England Journal of Medicine, vol. 218, no. 5, pp. 291–300, 1988. FrymoyerJ. W. “Back pain and sciata,” The New England Journal of Medicine 218 5 291 300 1988 Search in Google Scholar

J. B. Dillane, J. Fry and G. Kalton, “Acute Back Syndrome—A Study from General Practice,” BMJ, vol. 2, no. 5505, pp. 82–84, 1966. DillaneJ. B. FryJ. KaltonG. “Acute Back Syndrome—A Study from General Practice,” BMJ 2 5505 82 84 1966 Search in Google Scholar

D. K. Resnick, T. F. Choudhri, A. T. Dailey, M. W. Groff, L. Khoo, P. G. Matz, P. Mummaneni, W. C. Watters III, J. Wang, B. C. Walters and M. N. Hadley, “Guidelines for the performance of fusion procedures for degenerative disease of the lumbar spine. Part 7: intractable low-back pain without stenosis or spondylolisthesis,” Journal of Neurosurgery: Spine, vol. 2, no. 6, pp. 670–672, 2005. ResnickD. K. ChoudhriT. F. DaileyA. T. GroffM. W. KhooL. MatzP. G. MummaneniP. WattersW. C.III WangJ. WaltersB. C. HadleyM. N. “Guidelines for the performance of fusion procedures for degenerative disease of the lumbar spine. Part 7: intractable low-back pain without stenosis or spondylolisthesis,” Journal of Neurosurgery: Spine 2 6 670 672 2005 Search in Google Scholar

B. I. Martin, S. K. Mirza, N. Spina, W. R. Spiker, B. Lawrence and D. S. Brodke, “Trends in Lumbar Fusion Procedure Rates and Associated Hospital Costs for Degenerative Spinal Diseases in the United States, 2004 to 2015,” Spine, vol. 44, no. 5, p. 369–376, 2019. MartinB. I. MirzaS. K. SpinaN. SpikerW. R. LawrenceB. BrodkeD. S. “Trends in Lumbar Fusion Procedure Rates and Associated Hospital Costs for Degenerative Spinal Diseases in the United States, 2004 to 2015,” Spine 44 5 369 376 2019 Search in Google Scholar

R. A. Deyo, D. Cherkin, D. Conrad and E. Volinn, “Cost, controversy, crisis: low back pain and the health of the public,” Annual Review of Public Health, vol. 12, no. 1, p. 141–156, 1991. DeyoR. A. CherkinD. ConradD. VolinnE. “Cost, controversy, crisis: low back pain and the health of the public,” Annual Review of Public Health 12 1 141 156 1991 Search in Google Scholar

H. Briggs and P. R. Milligan, “Chip fusion of the low back following exploration of the spinal canal,” The Journal of Bone & Joint Surgery, vol. 26, no. 1, pp. 125–130, 1944. BriggsH. MilliganP. R. “Chip fusion of the low back following exploration of the spinal canal,” The Journal of Bone & Joint Surgery 26 1 125 130 1944 Search in Google Scholar

B. M. Ozgur, H. E. Aryan, L. Pimenta and W. R. Taylor, “Extreme Lateral Interbody Fusion (XLIF): a novel surgical technique for anterior lumbar interbody fusion,” The Spine Journal, vol. 6, no. 4, p. 435–443, 2006. OzgurB. M. AryanH. E. PimentaL. TaylorW. R. “Extreme Lateral Interbody Fusion (XLIF): a novel surgical technique for anterior lumbar interbody fusion,” The Spine Journal 6 4 435 443 2006 Search in Google Scholar

G. M. Malham, N. J. Ellis, R. M. Parker, C. M. Blecher, R. White, B. Goss and K. A. Seex, “Maintenance of segmental lordosis and disk height in stand-alone and instrumented extreme lateral interbody fusion (XLIF),” Clinical Spine Surgery, vol. 30, no. 2, pp. 90–98, 2017. MalhamG. M. EllisN. J. ParkerR. M. BlecherC. M. WhiteR. GossB. SeexK. A. “Maintenance of segmental lordosis and disk height in stand-alone and instrumented extreme lateral interbody fusion (XLIF),” Clinical Spine Surgery 30 2 90 98 2017 Search in Google Scholar

M. Si, J. Guo, J. Hao, X. Zhao, C. A. Randall and H. Wang, “Cold sintered composites consisting of PEEK metal oxides with improved electrical properties via the hybrid interfaces,” Composites. Part B, Engineering, vol. 226, p. 109349, 2021. SiM. GuoJ. HaoJ. ZhaoX. RandallC. A. WangH. “Cold sintered composites consisting of PEEK metal oxides with improved electrical properties via the hybrid interfaces,” Composites. Part B, Engineering 226 109349 2021 Search in Google Scholar

E. Massaad, N. Fatima, A. Kiapour, M. Hadzipasic, G. M. Shankar and J. H. Shin, “Polyetheretherketone Versus Titanium Cages for Posterior Lumbar Interbody Fusion: Meta-Analysis and Review of the Literature,” Neurospine, vol. 17, no. 1, pp. 125–135, 2020. MassaadE. FatimaN. KiapourA. HadzipasicM. ShankarG. M. ShinJ. H. “Polyetheretherketone Versus Titanium Cages for Posterior Lumbar Interbody Fusion: Meta-Analysis and Review of the Literature,” Neurospine 17 1 125 135 2020 Search in Google Scholar

M.-C. Kim, H.-T. Chung, J.-L. Cho, D.-J. Kim and N.-S. Chung, “Subsidence of polyetheretherketone cage after minimally invasive transforaminal lumbar interbody fusion,” Journal of Spinal Disorders & Techniques, vol. 26, no. 2, pp. 87–92, 2013. KimM.-C. ChungH.-T. ChoJ.-L. KimD.-J. ChungN.-S. “Subsidence of polyetheretherketone cage after minimally invasive transforaminal lumbar interbody fusion,” Journal of Spinal Disorders & Techniques 26 2 87 92 2013 Search in Google Scholar

F. Galbusera, D. Volkheimer, S. Reitmaier, N. Berger-Roscher, A. Kienle and H.-J. Wilke, “Pedicle screw loosening: a clinically relevant complication?,” European Spine Journal, vol. 24, no. 5, pp. 1005–1016, 2015. GalbuseraF. VolkheimerD. ReitmaierS. Berger-RoscherN. KienleA. WilkeH.-J. “Pedicle screw loosening: a clinically relevant complication?,” European Spine Journal 24 5 1005 1016 2015 Search in Google Scholar

C. Herren, R. M. Simons, J. Bredow, S. Oikonomidis, L. Westermann, R. Sobottke, M. J. Scheyerer, M. Pishnamaz, P. Eysel, K. Zarghooni, J. Franklin and J. Siewe, “Posterior Lumbar Interbody Fusion versus Dynamic Hybrid Instrumentation: A Prospective Randomized Clinical Trial,” World Neurosurgery, vol. 117, p. e228–e237, 2018. HerrenC. SimonsR. M. BredowJ. OikonomidisS. WestermannL. SobottkeR. ScheyererM. J. PishnamazM. EyselP. ZarghooniK. FranklinJ. SieweJ. “Posterior Lumbar Interbody Fusion versus Dynamic Hybrid Instrumentation: A Prospective Randomized Clinical Trial,” World Neurosurgery 117 e228 e237 2018 Search in Google Scholar

D. S. Chun, K. C. Baker and W. K. Hsu, “Lumbar pseudarthrosis: a review of current diagnosis and treatment,” Neurosurgical Focus, vol. 39, no. 4, p. E10, 2015. ChunD. S. BakerK. C. HsuW. K. “Lumbar pseudarthrosis: a review of current diagnosis and treatment,” Neurosurgical Focus 39 4 E10 2015 Search in Google Scholar

P. Berjano, F. Langella, M. Damilano, M. Pejrona, J. Buric, M. Ismael, J. H. Villafañe and C. Lamartina, “Fusion rate following extreme lateral lumbar interbody fusion,” European Spine Journal, vol. 24, pp. 369–371, 2015. BerjanoP. LangellaF. DamilanoM. PejronaM. BuricJ. IsmaelM. VillafañeJ. H. LamartinaC. “Fusion rate following extreme lateral lumbar interbody fusion,” European Spine Journal 24 369 371 2015 Search in Google Scholar

B. Meng, J. Bunch, D. Burton and J. Wang, “Lumbar interbody fusion: recent advances in surgical techniques and bone healing strategies,” European Spine Journal, vol. 30, no. 1, pp. 22–33, 2021. MengB. BunchJ. BurtonD. WangJ. “Lumbar interbody fusion: recent advances in surgical techniques and bone healing strategies,” European Spine Journal 30 1 22 33 2021 Search in Google Scholar

W. K. Hsu, M. S. Nickoli, J. C. Wang, J. R. Lieberman, H. S. An, S. T. Yoon, J. A. Youssef, D. S. Brodke and C. M. McCullough, “Improving the Clinical Evidence of Bone Graft Substitute Technology in Lumbar Spine Surgery,” Global Spine Journal, vol. 2, no. 4, p. 239–248, 2012. HsuW. K. NickoliM. S. WangJ. C. LiebermanJ. R. AnH. S. YoonS. T. YoussefJ. A. BrodkeD. S. McCulloughC. M. “Improving the Clinical Evidence of Bone Graft Substitute Technology in Lumbar Spine Surgery,” Global Spine Journal 2 4 239 248 2012 Search in Google Scholar

E. Klineberg, M. Gupta, I. McCarthy and R. Hostin, “Detection of Pseudarthrosis in Adult Spinal Deformity: The Use of Health-related Quality-of-life Outcomes to Predict Pseudarthrosis,” Clinical Spine Surgery, vol. 29, no. 8, pp. 318–322, 2016. KlinebergE. GuptaM. McCarthyI. HostinR. “Detection of Pseudarthrosis in Adult Spinal Deformity: The Use of Health-related Quality-of-life Outcomes to Predict Pseudarthrosis,” Clinical Spine Surgery 29 8 318 322 2016 Search in Google Scholar

L. Y. Carreon, S. D. Glassman, J. D. Schwender, B. R. Subach, M. F. Gornet and S. Ohno, “Reliability and accuracy of fine-cut computed tomography scans to determine the status of anterior interbody fusions with metallic cages,” Spine Journal, vol. 8, no. 6, pp. 998–1002, 2018. CarreonL. Y. GlassmanS. D. SchwenderJ. D. SubachB. R. GornetM. F. OhnoS. “Reliability and accuracy of fine-cut computed tomography scans to determine the status of anterior interbody fusions with metallic cages,” Spine Journal 8 6 998 1002 2018 Search in Google Scholar

M. Mujeeb-U-Rahman, D. Adalian, C.-F. Chang and A. Scherer, “Optical power transfer and communication methods for wireless implantable sensing platforms,” Journal of Biomedical Optics, vol. 20, no. 9, pp. 095012:1 – 095012:9, 2015. Mujeeb-U-RahmanM. AdalianD. ChangC.-F. SchererA. “Optical power transfer and communication methods for wireless implantable sensing platforms,” Journal of Biomedical Optics 20 9 095012:1 095012:9 2015 Search in Google Scholar

Anindya Nag, Subhas Chandra Mukhopadhyay, Flexible Sensors for Energy-Harvesting Applications, Springer-Nature, Vol. 42, 2022. NagAnindya MukhopadhyaySubhas Chandra Flexible Sensors for Energy-Harvesting Applications Springer-Nature 42 2022 Search in Google Scholar

P. Cinquin, C. Gondran, F. Giroud, S. Mazabrard, A. Pellissier, F. Boucher, J.-P. Alcaraz, K. Gorgy, F. Lenouvel, S. Mathé, P. Porcu, S. Cosnier and R. Haverkamp, “A Glucose BioFuel Cell Implanted in Rats,” PLoS ONE, vol. 5, no. 5, p. e10476, 2010. CinquinP. GondranC. GiroudF. MazabrardS. PellissierA. BoucherF. AlcarazJ.-P. GorgyK. LenouvelF. MathéS. PorcuP. CosnierS. HaverkampR. “A Glucose BioFuel Cell Implanted in Rats,” PLoS ONE 5 5 e10476 2010 Search in Google Scholar

B. Shi, Z. Li and Y. Fan, “Implantable Energy-Harvesting Devices,” Advanced Materials, vol. 30, no. 44, pp. 1801511–1801529, 2018. ShiB. LiZ. FanY. “Implantable Energy-Harvesting Devices,” Advanced Materials 30 44 1801511 1801529 2018 Search in Google Scholar

H. A. Owida, J. I. Al-Nabulsi, N. M. Turab, F. Alnaimat, H. Rababah, M. Y. Shakour, C. Galli and C. Galli, “Autocharging Techniques for Implantable Medical Applications,” International Journal of Biomaterials, vol. 2021, pp. 1–7, 2021. OwidaH. A. Al-NabulsiJ. I. TurabN. M. AlnaimatF. RababahH. ShakourM. Y. GalliC. GalliC. “Autocharging Techniques for Implantable Medical Applications,” International Journal of Biomaterials 2021 1 7 2021 Search in Google Scholar

D. H. Kim, H. J. Shin, H. Lee, C. K. Jeong, H. Park, G. Hwang, H. Lee, D. J. Joe, J. H. Han, S. H. Lee, J. Kim, B. Joung and K. J. Lee, “In Vivo Self-Powered Wireless Transmission Using Biocompatible Flexible Energy Harvesters,” Advanced Function Materials, vol. 27, no. 25, p. 1700341, 2017. KimD. H. ShinH. J. LeeH. JeongC. K. ParkH. HwangG. LeeH. JoeD. J. HanJ. H. LeeS. H. KimJ. JoungB. LeeK. J. “In Vivo Self-Powered Wireless Transmission Using Biocompatible Flexible Energy Harvesters,” Advanced Function Materials 27 25 1700341 2017 Search in Google Scholar

O. V. Gorskii, “Potential Power Supply Methods for Implanted Devices,” Biomedical Engineering, vol. 52, no. 3, p. 204–209, 2018. GorskiiO. V. “Potential Power Supply Methods for Implanted Devices,” Biomedical Engineering 52 3 204 209 2018 Search in Google Scholar

S. R. Khan, S. K. Pavuluri, G. Cummins and M. P. Y. Desmulliez, “Wireless Power Transfer Techniques for Implantable Medical Devices: A Review,” Sensors, vol. 20, no. 12, pp. 1–58, 2020. KhanS. R. PavuluriS. K. CumminsG. DesmulliezM. P. Y. “Wireless Power Transfer Techniques for Implantable Medical Devices: A Review,” Sensors 20 12 1 58 2020 Search in Google Scholar

A. B. Amar, A. B. Kouki and H. Cao, “Power approaches for implantable medical devices,” Sensors, vol. 15, no. 11, p. 28889–28914, 2015. AmarA. B. KoukiA. B. CaoH. “Power approaches for implantable medical devices,” Sensors 15 11 28889 28914 2015 Search in Google Scholar

Chinthaka Pasan Gooneratne, Subhas Mukhopadhyay, Bodong Li, Guodong Zhan, Arturo Magana-Mora, Timothy Eric Moellendick, Triboelectric energy harvesting with pipe-in-pipe structure, US Patent, number 11,421,513, 2022. GooneratneChinthaka Pasan MukhopadhyaySubhas LiBodong ZhanGuodong Magana-MoraArturo MoellendickTimothy Eric Triboelectric energy harvesting with pipe-in-pipe structure US Patent, number 11,421,513, 2022 Search in Google Scholar

J. Li, L. Kang, Y. Long, H. Wei, Y. Yu, Y. Wang, C. A. Ferreira, G. Yao, Z. Zhang, C. Carlos, L. German, X. Lan, W. Cai and X. Wang, “Implanted Battery-Free Direct-Current Micro-Power Supply from in Vivo Breath Energy Harvesting,” ACS Applied Materials & Interfaces, vol. 10, no. 49, pp. 42030–42038, 2018. LiJ. KangL. LongY. WeiH. YuY. WangY. FerreiraC. A. YaoG. ZhangZ. CarlosC. GermanL. LanX. CaiW. WangX. “Implanted Battery-Free Direct-Current Micro-Power Supply from in Vivo Breath Energy Harvesting,” ACS Applied Materials & Interfaces 10 49 42030 42038 2018 Search in Google Scholar

C. K. Jeong, K. M. Baek, S. Niu, T. W. Nam, Y. H. Hur, D. Y. Park, G.-T. Hwang, M. Byun, Z. L. Wang, Y. S. Jung and K. J. Lee, “Topographically-Designed Triboelectric Nanogenerator via Block Copolymer Self-Assembly,” Nano Letters, vol. 14, no. 12, p. 7031–7038, 2014. JeongC. K. BaekK. M. NiuS. NamT. W. HurY. H. ParkD. Y. HwangG.-T. ByunM. WangZ. L. JungY. S. LeeK. J. “Topographically-Designed Triboelectric Nanogenerator via Block Copolymer Self-Assembly,” Nano Letters 14 12 7031 7038 2014 Search in Google Scholar

S. El Ichi-Ribault, J.-P. Alcaraz, F. Boucher, B. Boutaud, R. Dalmolin, J. Boutonnat, P. Cinquin, A. Zebda and D. K. Martin, “Remote wireless control of an enzymatic biofuel cell implanted in a rabbit for 2 months,” Electrochimica Acta, vol. 269, pp. 360–366, 2018. El Ichi-RibaultS. AlcarazJ.-P. BoucherF. BoutaudB. DalmolinR. BoutonnatJ. CinquinP. ZebdaA. MartinD. K. “Remote wireless control of an enzymatic biofuel cell implanted in a rabbit for 2 months,” Electrochimica Acta 269 360 366 2018 Search in Google Scholar

A. Pfenniger, M. Jonsson, A. Zurbuchen, V. M. Koch and R. Vogel, “Energy Harvesting from the Cardiovascular System, or How to Get a Little Help from Yourself,” Annals of Biomedical Engineering, vol. 41, no. 11, p. 2248–2263, 2013. PfennigerA. JonssonM. ZurbuchenA. KochV. M. VogelR. “Energy Harvesting from the Cardiovascular System, or How to Get a Little Help from Yourself,” Annals of Biomedical Engineering 41 11 2248 2263 2013 Search in Google Scholar

A. Haeberlin, A. Zurbuchen, J. Schaerer, J. Wagner, S. Walpen, C. Huber, H. Haeberlin, J. Fuhrer and R. Vogel, “Successful pacing using a batteryless sunlight-powered pacemaker,” Europace, vol. 16, no. 10, p. 1534–1539, 2014. HaeberlinA. ZurbuchenA. SchaererJ. WagnerJ. WalpenS. HuberC. HaeberlinH. FuhrerJ. VogelR. “Successful pacing using a batteryless sunlight-powered pacemaker,” Europace 16 10 1534 1539 2014 Search in Google Scholar

K. Goto, T. Nakagawa, O. Nakamura and S. Kawata, “An Implantable Power Supply with an Optically Rechargeable Lithium Battery,” IEEE Transactions on Biomedical Engineering, vol. 48, no. 7, p. 830–833, 2001. GotoK. NakagawaT. NakamuraO. KawataS. “An Implantable Power Supply with an Optically Rechargeable Lithium Battery,” IEEE Transactions on Biomedical Engineering 48 7 830 833 2001 Search in Google Scholar

J. Kim, J. Seo, D. Jung, T. Lee, H. Ju, J. Han, N. Kim, J. Jeong, S. Cho, J. H. Seol and J. Lee, “Active photonic wireless power transfer into live tissues,” Proceedings of the National Academy of Sciences - PNAS, vol. 117, no. 29, p. 16856–16863, 2020. KimJ. SeoJ. JungD. LeeT. JuH. HanJ. KimN. JeongJ. ChoS. SeolJ. H. LeeJ. “Active photonic wireless power transfer into live tissues,” Proceedings of the National Academy of Sciences - PNAS 117 29 16856 16863 2020 Search in Google Scholar

M. P. Theodoridis, “Effective Capacitive Power Transfer,” IEEE Transactions on Power Electronics, vol. 27, no. 12, pp. 4906–4913, 2012. TheodoridisM. P. “Effective Capacitive Power Transfer,” IEEE Transactions on Power Electronics 27 12 4906 4913 2012 Search in Google Scholar

A. M. Sodagar and P. Amiri, “Capacitive coupling for power and data telemetry to implantable biomedical microsystems,” 2009 4th International IEEE/EMBS Conference on Neural Engineering, 2009, pp. 411–414, 2009. SodagarA. M. AmiriP. “Capacitive coupling for power and data telemetry to implantable biomedical microsystems,” 2009 4th International IEEE/EMBS Conference on Neural Engineering, 2009 411 414 2009 Search in Google Scholar

K. Detka and K. Gorecki, “Wireless Power Transfer - A Review,” Energies, vol. 15, no. 19, p. 7236, 2022. DetkaK. GoreckiK. “Wireless Power Transfer - A Review,” Energies 15 19 7236 2022 Search in Google Scholar

S. Nag, A. Koruprolu, S. M. Saikh, R. Erfani and P. Mohseni, “Auto-Resonant Tuning for Capacitive Power and Data Telemetry Using Flexible Patches,” IEEE Transactions on Circuits and Systems. II, Express Briefs, vol. 67, no. 10, p. 1804–1808, 2020. NagS. KoruproluA. SaikhS. M. ErfaniR. MohseniP. “Auto-Resonant Tuning for Capacitive Power and Data Telemetry Using Flexible Patches,” IEEE Transactions on Circuits and Systems. II, Express Briefs 67 10 1804 1808 2020 Search in Google Scholar

A. Hassan, C. Sawma, M. Hasanuzzaman, B. Gosselin and M. Sawan, “Spatial carrier position modulation based multichannel capacitive link for bioelectronic implants,” 2015 IEEE Biomedical Circuits and Systems Conference (BioCAS), pp. 1–4, 2015. HassanA. SawmaC. HasanuzzamanM. GosselinB. SawanM. “Spatial carrier position modulation based multichannel capacitive link for bioelectronic implants,” 2015 IEEE Biomedical Circuits and Systems Conference (BioCAS) 1 4 2015 Search in Google Scholar

G. L. Barbruni, P. M. Ros, D. Demarchi, S. Carrara and D. Ghezzi, “Miniaturised Wireless Power Transfer Systems for Neurostimulation: A Review,” IEEE Transactions on Biomedical Circuits and Systems, vol. 14, no. 6, p. 1160–1178, 2020. BarbruniG. L. RosP. M. DemarchiD. CarraraS. GhezziD. “Miniaturised Wireless Power Transfer Systems for Neurostimulation: A Review,” IEEE Transactions on Biomedical Circuits and Systems 14 6 1160 1178 2020 Search in Google Scholar

J. C. Schuder, “Powering an Artificial Heart: Birth of the Inductively Coupled-Radio Frequency System in 1960,” Artificial Organs, vol. 26, no. 11, pp. 909–915, 2002. SchuderJ. C. “Powering an Artificial Heart: Birth of the Inductively Coupled-Radio Frequency System in 1960,” Artificial Organs 26 11 909 915 2002 Search in Google Scholar

M. C. Edwards, J. M. Hoy, S. I. FitzGibbon and P. J. Murray, “Monitoring with microchips: Microchip-automated doors as a potential novel method for tracking the survival of released Northern Brown Bandicoots,” Ecological Management & Restoration, vol. 21, no. 3, p. 254–256, 2020. EdwardsM. C. HoyJ. M. FitzGibbonS. I. MurrayP. J. “Monitoring with microchips: Microchip-automated doors as a potential novel method for tracking the survival of released Northern Brown Bandicoots,” Ecological Management & Restoration 21 3 254 256 2020 Search in Google Scholar

M. Kiani, U.-M. Jow and M. Ghovanloo, “Design and Optimization of a 3-Coil Inductive Link for Efficient Wireless Power Transmission,” IEEE Transactions on Biomedical Circuits and Systems, vol. 5, no. 6, p. 579–591, 2011. KianiM. JowU.-M. GhovanlooM. “Design and Optimization of a 3-Coil Inductive Link for Efficient Wireless Power Transmission,” IEEE Transactions on Biomedical Circuits and Systems 5 6 579 591 2011 Search in Google Scholar

U.-M. Jow and M. Ghovanloo, “Design and Optimization of Printed Spiral Coils for Efficient Transcutaneous Inductive Power Transmission,” IEEE Transactions on Biomedical Circuits and Systems, vol. 1, no. 3, pp. 193–202, 2007. JowU.-M. GhovanlooM. “Design and Optimization of Printed Spiral Coils for Efficient Transcutaneous Inductive Power Transmission,” IEEE Transactions on Biomedical Circuits and Systems 1 3 193 202 2007 Search in Google Scholar

A. Denisov and E. Yeatman, “Ultrasonic vs. Inductive Power Delivery for Miniature Biomedical Implants,” 2010 International Conference on Body Sensor Networks, pp. 84–89, 2010. DenisovA. YeatmanE. “Ultrasonic vs. Inductive Power Delivery for Miniature Biomedical Implants,” 2010 International Conference on Body Sensor Networks 84 89 2010 Search in Google Scholar

G. Lazzi, “Thermal effects of bioimplants,” IEEE Engineering in Medicine and Biology Magazine, vol. 24, no. 5, pp. 75–81, 2005. LazziG. “Thermal effects of bioimplants,” IEEE Engineering in Medicine and Biology Magazine 24 5 75 81 2005 Search in Google Scholar

S. A. Mirbozorgi, P. Yeon and M. Ghovanloo, “Robust Wireless Power Transmission to mm-Sized Free-Floating Distributed Implants,” IEEE Transactions on Biomedical Circuits and Systems, vol. 11, no. 3, pp. 692–702, 2017. MirbozorgiS. A. YeonP. GhovanlooM. “Robust Wireless Power Transmission to mm-Sized Free-Floating Distributed Implants,” IEEE Transactions on Biomedical Circuits and Systems 11 3 692 702 2017 Search in Google Scholar

M. Baker and R. Sarpeshkar, “Feedback Analysis and Design of RF Power Links for Low-Power Bionic Systems,” IEEE Transactions on Biomedical Circuits and Systems, vol. 1, no. 1, p. 28–38, 2007. BakerM. SarpeshkarR. “Feedback Analysis and Design of RF Power Links for Low-Power Bionic Systems,” IEEE Transactions on Biomedical Circuits and Systems 1 1 28 38 2007 Search in Google Scholar

P. Feng, P. Yeon, Y. Cheng, M. Ghovanloo and T. G. Constandinou, “Chip-Scale Coils for Millimeter-Sized Bio-Implants,” IEEE Transactions on Biomedical Circuits and Systems, vol. 12, no. 5, p. 1088–1099, 2018. FengP. YeonP. ChengY. GhovanlooM. ConstandinouT. G. “Chip-Scale Coils for Millimeter-Sized Bio-Implants,” IEEE Transactions on Biomedical Circuits and Systems 12 5 1088 1099 2018 Search in Google Scholar

S. R. Khan, S. K. Pavuluri, G. Cummins and M. P. Y. Desmulliez, “Miniaturized 3-D Cross-Type Receiver for Wirelessly Powered Capsule Endoscopy,” IEEE Transactions on Microwave Theory and Techniques, vol. 67, no. 5, p. 1985–1993, 2019. KhanS. R. PavuluriS. K. CumminsG. DesmulliezM. P. Y. “Miniaturized 3-D Cross-Type Receiver for Wirelessly Powered Capsule Endoscopy,” IEEE Transactions on Microwave Theory and Techniques 67 5 1985 1993 2019 Search in Google Scholar

B. Lenaerts and R. Puers, “An inductive power link for a wireless endoscope,” Biosensors & Bioelectronics, vol. 22, no. 7, p. 1390–1395, 2007. LenaertsB. PuersR. “An inductive power link for a wireless endoscope,” Biosensors & Bioelectronics 22 7 1390 1395 2007 Search in Google Scholar

S. Ozeri, D. Shmilovitz, S. Singer and C.-C. Wang, “Ultrasonic transcutaneous energy transfer using a continuous wave 650 kHz Gaussian shaded transmitter,” Ultrasonics, vol. 50, no. 7, pp. 666–674, 2010. OzeriS. ShmilovitzD. SingerS. WangC.-C. “Ultrasonic transcutaneous energy transfer using a continuous wave 650 kHz Gaussian shaded transmitter,” Ultrasonics 50 7 666 674 2010 Search in Google Scholar

H. Basaeri, D. B. Christensen and S. Roundy, “A review of acoustic power transfer for bio-medical implants,” Smart Materials and Structures, vol. 25, no. 12, p. 123001, 2016. BasaeriH. ChristensenD. B. RoundyS. “A review of acoustic power transfer for bio-medical implants,” Smart Materials and Structures 25 12 123001 2016 Search in Google Scholar

S. Ozeri and D. Shmilovitz, “Ultrasonic transcutaneous energy transfer for powering implanted devices,” Ultrasonics, vol. 50, no. 6, pp. 556–566, 2010. OzeriS. ShmilovitzD. “Ultrasonic transcutaneous energy transfer for powering implanted devices,” Ultrasonics 50 6 556 566 2010 Search in Google Scholar

M. Meng and M. Kiani, “Design and Optimization of Ultrasonic Wireless Power Transmission Links for Millimeter-Sized Biomedical Implants,” IEEE Transactions on Biomedical Circuits and Systems, vol. 11, no. 1, pp. 98–107, 2017. MengM. KianiM. “Design and Optimization of Ultrasonic Wireless Power Transmission Links for Millimeter-Sized Biomedical Implants,” IEEE Transactions on Biomedical Circuits and Systems 11 1 98 107 2017 Search in Google Scholar

C. Wang, Q. Shi and C. Lee, “Advanced Implantable Biomedical Devices Enabled by Triboelectric Nanogenerators,” Nanomaterials, vol. 12, no. 8, p. 1366, 2022. WangC. ShiQ. LeeC. “Advanced Implantable Biomedical Devices Enabled by Triboelectric Nanogenerators,” Nanomaterials 12 8 1366 2022 Search in Google Scholar

S. Arra, J. Leskinen, J. Heikkila and J. Vanhala, “Ultrasonic Power and Data Link for Wireless Implantable Applications,” 2007 2nd International Symposium on Wireless Pervasive Computing, 2007. ArraS. LeskinenJ. HeikkilaJ. VanhalaJ. “Ultrasonic Power and Data Link for Wireless Implantable Applications,” 2007 2nd International Symposium on Wireless Pervasive Computing 2007 Search in Google Scholar

B. L. Turner, S. Senevirathne, K. Kilgour, D. McArt, M. Biggs, S. Menegatti and M. A. Daniele, “Ultrasound-Powered Implants: A Critical Review of Piezoelectric Material Selection and Applications,” Advanced Healthcare Materials, vol. 10, no. 17, p. 2100986, 2021. TurnerB. L. SenevirathneS. KilgourK. McArtD. BiggsM. MenegattiS. DanieleM. A. “Ultrasound-Powered Implants: A Critical Review of Piezoelectric Material Selection and Applications,” Advanced Healthcare Materials 10 17 2100986 2021 Search in Google Scholar

B. M. G. Rosa and G.-Z. Yang, “Ultrasound Powered Implants: Design, Performance Considerations and Simulation Results,” Scientific Reports, vol. 10, no. 1, p. 6537, 2020. RosaB. M. G. YangG.-Z. “Ultrasound Powered Implants: Design, Performance Considerations and Simulation Results,” Scientific Reports 10 1 6537 2020 Search in Google Scholar

C. Chen, Z. Wen, J. Shi, X. Jian, P. Li, J. T. W. Yeow and X. Sun, “Micro triboelectric ultrasonic device for acoustic energy transfer and signal communication,” Nature Communications, vol. 11, no. 1, p. 4143, 2020. ChenC. WenZ. ShiJ. JianX. LiP. YeowJ. T. W. SunX. “Micro triboelectric ultrasonic device for acoustic energy transfer and signal communication,” Nature Communications 11 1 4143 2020 Search in Google Scholar

S. Sherrit, M. Badescu, X. Bao, Y. Bar-Cohen and Z. Chang, “Efficient electromechanical network model for wireless acoustic-electric feed-throughs,” SPIE, vol. 5758, p. 362–372, 2005. SherritS. BadescuM. BaoX. Bar-CohenY. ChangZ. “Efficient electromechanical network model for wireless acoustic-electric feed-throughs,” SPIE 5758 362 372 2005 Search in Google Scholar

M. Acosta, N. Novak, V. Rojas, S. Patel, R. Vaish, J. Koruza, G. A. Rossetti and J. Rödel, “BaTiO3-based piezoelectrics: Fundamentals, current status, and perspectives,” Applied Physics Reviews, vol. 4, no. 4, p. 041305, 2017. AcostaM. NovakN. RojasV. PatelS. VaishR. KoruzaJ. RossettiG. A. RödelJ. “BaTiO3-based piezoelectrics: Fundamentals, current status, and perspectives,” Applied Physics Reviews 4 4 041305 2017 Search in Google Scholar

J. Charthad, M. J. Weber, T. C. Chang and A. Arbabian, “A mm-Sized Implantable Medical Device (IMD) With Ultrasonic Power Transfer and a Hybrid Bi-Directional Data Link,” IEEE Journal of Solid-State Circuits, vol. 50, no. 8, p. 1741–1753, 2015. CharthadJ. WeberM. J. ChangT. C. ArbabianA. “A mm-Sized Implantable Medical Device (IMD) With Ultrasonic Power Transfer and a Hybrid Bi-Directional Data Link,” IEEE Journal of Solid-State Circuits 50 8 1741 1753 2015 Search in Google Scholar

C. Li, K.-F. Un, P.-i. Mak, Y. Chen, J.-M. Munoz-Ferreras, Z. Yang and R. Gomez-Garcia, “Overview of Recent Development on Wireless Sensing Circuits and Systems for Healthcare and Biomedical Applications,” IEEE Journal on Emerging and Selected Topics in Circuits and Systems, vol. 8, no. 2, p. 165–177, 2018. LiC. UnK.-F. MakP.-i. ChenY. Munoz-FerrerasJ.-M. YangZ. Gomez-GarciaR. “Overview of Recent Development on Wireless Sensing Circuits and Systems for Healthcare and Biomedical Applications,” IEEE Journal on Emerging and Selected Topics in Circuits and Systems 8 2 165 177 2018 Search in Google Scholar

M. J. Weber, Y. Yoshihara, A. Sawaby, J. Charthad, T. C. Chang and A. Arbabian, “A Miniaturized Single-Transducer Implantable Pressure Sensor With Time-Multiplexed Ultrasonic Data and Power Links,” IEEE Journal of Solid-State Circuits, vol. 53, no. 4, p. 1089–1101, 2018. WeberM. J. YoshiharaY. SawabyA. CharthadJ. ChangT. C. ArbabianA. “A Miniaturized Single-Transducer Implantable Pressure Sensor With Time-Multiplexed Ultrasonic Data and Power Links,” IEEE Journal of Solid-State Circuits 53 4 1089 1101 2018 Search in Google Scholar

R. Hinchet, H.-J. Yoon, H. Ryu, M.-K. Kim, E.-K. Choi, D.-S. Kim and S.-W. Kim, “Transcutaneous ultrasound energy harvesting using capacitive triboelectric technology’,” Science (American Association for the Advancement of Science), vol. 365, no. 6452, p. 491–494, 2019. HinchetR. YoonH.-J. RyuH. KimM.-K. ChoiE.-K. KimD.-S. KimS.-W. “Transcutaneous ultrasound energy harvesting using capacitive triboelectric technology’,” Science (American Association for the Advancement of Science) 365 6452 491 494 2019 Search in Google Scholar

G. Jiang, “Design challenges of implantable pressure monitoring system,” Frontiers in Neuroscience, vol. 4, p. 29, 2010. JiangG. “Design challenges of implantable pressure monitoring system,” Frontiers in Neuroscience 4 29 2010 Search in Google Scholar

T. Dong, Y. Gu, T. Liu and M. Pecht, “Resistive and capacitive strain sensors based on customized compliant electrode: Comparison and their wearable applications,” Sensors and Actuators A: Physical, vol. 326, p. 112720, 2021. DongT. GuY. LiuT. PechtM. “Resistive and capacitive strain sensors based on customized compliant electrode: Comparison and their wearable applications,” Sensors and Actuators A: Physical 326 112720 2021 Search in Google Scholar

N. Arfah, A. H. M. Z. Alam and S. Khan, “Capacitance-to-voltage converter for capacitance measuring system,” 2011 4th International Conference on Mechatronics (ICOM), pp. 1–4, 2011. ArfahN. AlamA. H. M. Z. KhanS. “Capacitance-to-voltage converter for capacitance measuring system,” 2011 4th International Conference on Mechatronics (ICOM) 1 4 2011 Search in Google Scholar

C. Zhang, R. Gallichan, D. M. Budgett and D. McCormick, “A capacitive pressure sensor interface ic with wireless power and data transfer,” Micromachines, vol. 11, no. 10, p. 897, 2020. ZhangC. GallichanR. BudgettD. M. McCormickD. “A capacitive pressure sensor interface ic with wireless power and data transfer,” Micromachines 11 10 897 2020 Search in Google Scholar

Z. Ma, Y. Zhang, K. Zhang, H. Deng and Q. Fu, “Recent progress in flexible capacitive sensors: Structures and properties,” Nano Materials Science, 2022. MaZ. ZhangY. ZhangK. DengH. FuQ. “Recent progress in flexible capacitive sensors: Structures and properties,” Nano Materials Science 2022 Search in Google Scholar

M. Cicalini, M. Piotto, P. Bruschi and M. Dei, “Design of a Capacitance-to-Digital Converter Based on Iterative Delay-Chain Discharge in 180 nm CMOS Technology,” Sensors, vol. 22, no. 1, p. 121, 2021. CicaliniM. PiottoM. BruschiP. DeiM. “Design of a Capacitance-to-Digital Converter Based on Iterative Delay-Chain Discharge in 180 nm CMOS Technology,” Sensors 22 1 121 2021 Search in Google Scholar

R. Wei, W. Wang, X. Xiao and Q. Chen, “A Low-Power Delta-Sigma Capacitance-to-Digital Converter for Capacitive Sensors,” IEEE Access, vol. 7, p. 78281–78288, 2019. WeiR. WangW. XiaoX. ChenQ. “A Low-Power Delta-Sigma Capacitance-to-Digital Converter for Capacitive Sensors,” IEEE Access 7 78281 78288 2019 Search in Google Scholar

Prashanth V. and George B., “An Improved Capacitance-to-digital Converter for Leaky Capacitive sensors”, IEEE Sensors Journal, vol. 15, no. 11, pp. 6238–6247, Nov. 2015. PrashanthV. GeorgeB. “An Improved Capacitance-to-digital Converter for Leaky Capacitive sensors” IEEE Sensors Journal 15 11 6238 6247 Nov. 2015 Search in Google Scholar

Sreenath V. and George B., “An Improved Closed-Loop Switched Capacitor Capacitance to Frequency Converter and Its Evaluation”, IEEE Transactions on Instrumentation and Measurement, vol. 67, no. 5, pp. 1028–1035, May 2018. SreenathV. GeorgeB. “An Improved Closed-Loop Switched Capacitor Capacitance to Frequency Converter and Its Evaluation” IEEE Transactions on Instrumentation and Measurement 67 5 1028 1035 May 2018 Search in Google Scholar

B. Lee and M. Ghovanloo, “An Overview of Data Telemetry in Inductively Powered Implantable Biomedical Devices,” IEEE Communications Magazine, vol. 57, no. 2, p. 74–80, 2019. LeeB. GhovanlooM. “An Overview of Data Telemetry in Inductively Powered Implantable Biomedical Devices,” IEEE Communications Magazine 57 2 74 80 2019 Search in Google Scholar

S. Ha, C. Kim, J. Park, S. Joshi and G. Cauwenberghs, “Energy Recycling Telemetry IC With Simultaneous 11.5 mW Power and 6.78 Mb/s Backward Data Delivery Over a Single 13.56 MHz Inductive Link,” IEEE Journal of Solid-State Circuits, vol. 51, no. 11, p. 2664–2678, 2016. HaS. KimC. ParkJ. JoshiS. CauwenberghsG. “Energy Recycling Telemetry IC With Simultaneous 11.5 mW Power and 6.78 Mb/s Backward Data Delivery Over a Single 13.56 MHz Inductive Link,” IEEE Journal of Solid-State Circuits 51 11 2664 2678 2016 Search in Google Scholar

Vivek AS Ramakrishna, Uphar Chamoli, Subhas C Mukhopadhyay, Ashish D Diwan, B Gangadhara Prusty, Measuring compressive loads on a ‘smart’lumbar interbody fusion cage: Proof of concept, Journal of Biomechanics, Elsevier, vol. 147, pp. 111440, 2023. RamakrishnaVivek AS ChamoliUphar MukhopadhyaySubhas C DiwanAshish D Gangadhara PrustyB Measuring compressive loads on a ‘smart’lumbar interbody fusion cage: Proof of concept Journal of Biomechanics, Elsevier 147 111440 2023 Search in Google Scholar

A. Ebrazeh and P. Mohseni, “30 pJ/b, 67 Mbps, Centimeter-to-Meter Range Data Telemetry With an IR-UWB Wireless Link,” IEEE Transactions on Biomedical Circuits and Systems, vol. 9, no. 3, p. 362–369, 2015. EbrazehA. MohseniP. “30 pJ/b, 67 Mbps, Centimeter-to-Meter Range Data Telemetry With an IR-UWB Wireless Link,” IEEE Transactions on Biomedical Circuits and Systems 9 3 362 369 2015 Search in Google Scholar

J. M. Anderson, “Inflammatory Response to Implants,” ASAIO Journal, vol. 34, no. 2, p. 101–107, 1988. AndersonJ. M. “Inflammatory Response to Implants,” ASAIO Journal 34 2 101 107 1988 Search in Google Scholar

P. D. Wolf and W. M. Reichert, “Thermal Considerations for the Design of an Implanted Cortical Brain–Machine Interface (BMI),” in Indwelling Neural Implants, CRC Press, 2008, pp. 81–104. WolfP. D. ReichertW. M. “Thermal Considerations for the Design of an Implanted Cortical Brain–Machine Interface (BMI),” in Indwelling Neural Implants CRC Press 2008 81 104 Search in Google Scholar

C. R. Davies, F. Fukumura, K. Fukamachi, K. Muramoto, S. C. Himley, A. Massiello, J.-F. Chen and H. Harasaki, “Adaptation of tissue to a chronic heat load,” ASAIO Journal, vol. 40, no. 3, p. M514–M517, 1994. DaviesC. R. FukumuraF. FukamachiK. MuramotoK. HimleyS. C. MassielloA. ChenJ.-F. HarasakiH. “Adaptation of tissue to a chronic heat load,” ASAIO Journal 40 3 M514 M517 1994 Search in Google Scholar

D. Jiang, B. Shi, H. Ouyang, Y. Fan, Z. L. Wang and Z. Li, “Emerging Implantable Energy Harvesters and Self-Powered Implantable Medical Electronics,” ACS Nano, vol. 14, no. 6, p. 6436–6448, 2020. JiangD. ShiB. OuyangH. FanY. WangZ. L. LiZ. “Emerging Implantable Energy Harvesters and Self-Powered Implantable Medical Electronics,” ACS Nano 14 6 6436 6448 2020 Search in Google Scholar

K. N. Bocan and E. Sejdić, “Adaptive transcutaneous power transfer to implantable devices: A state of the art review,” Sensors, vol. 16, no. 3, p. 393, 2016. BocanK. N. SejdićE. “Adaptive transcutaneous power transfer to implantable devices: A state of the art review,” Sensors 16 3 393 2016 Search in Google Scholar

T. Laube, C. Brockmann, R. Buss, C. Lau, K. Höck, N. Stawski, T. Stieglitz, H. A. Richter and H. Schilling, “Optical energy transfer for intraocular microsystems studied in rabbits,” Graefe’s Archive for Clinical and Experimental Ophthalmology, vol. 242, no. 8, p. 661–667, 2004. LaubeT. BrockmannC. BussR. LauC. HöckK. StawskiN. StieglitzT. RichterH. A. SchillingH. “Optical energy transfer for intraocular microsystems studied in rabbits,” Graefe’s Archive for Clinical and Experimental Ophthalmology 242 8 661 667 2004 Search in Google Scholar

X. Zhuang, A. Nikoozadeh, M. A. Beasley, G. G. Yaralioglu, B. T. Khuri-Yakub and B. L. Pruitt, “Biocompatible coatings for CMUTs in a harsh, aqueous environment,” Journal of Micromechanics and Microengineering, vol. 17, no. 5, p. 994–1001, 2007. ZhuangX. NikoozadehA. BeasleyM. A. YaraliogluG. G. Khuri-YakubB. T. PruittB. L. “Biocompatible coatings for CMUTs in a harsh, aqueous environment,” Journal of Micromechanics and Microengineering 17 5 994 1001 2007 Search in Google Scholar

D. S. Lee, S. J. Kim, E. B. Kwon, C. W. Park, S. M. Jun, B. Choi and S. W. Kim, “Comparison of in vivo biocompatibilities between parylene-C and polydimethylsiloxane for implantable microelectronic devices,” Bulletin of Materials Science, vol. 36, no. 6, p. 1127–1132, 2013. LeeD. S. KimS. J. KwonE. B. ParkC. W. JunS. M. ChoiB. KimS. W. “Comparison of in vivo biocompatibilities between parylene-C and polydimethylsiloxane for implantable microelectronic devices,” Bulletin of Materials Science 36 6 1127 1132 2013 Search in Google Scholar

A. Ibrahim, M. Meng and M. Kiani, “A Comprehensive Comparative Study on Inductive and Ultrasonic Wireless Power Transmission to Biomedical Implants,” IEEE Sensors Journal, vol. 18, no. 9, p. 3813–3826, 2018. IbrahimA. MengM. KianiM. “A Comprehensive Comparative Study on Inductive and Ultrasonic Wireless Power Transmission to Biomedical Implants,” IEEE Sensors Journal 18 9 3813 3826 2018 Search in Google Scholar

M. O. Culjat, D. Goldenberg, P. Tewari and R. S. Singh, “A Review of Tissue Substitutes for Ultrasound Imaging,” Ultrasound in Medicine & Biology, vol. 36, no. 6, p. 861–873, 2010. CuljatM. O. GoldenbergD. TewariP. SinghR. S. “A Review of Tissue Substitutes for Ultrasound Imaging,” Ultrasound in Medicine & Biology 36 6 861 873 2010 Search in Google Scholar

Silicon Labs, “EFM8BB52 Data Sheet,” Silicon Labs, 2021. [Online]. Available: https://www.silabs.com/documents/public/data-sheets/efm8bb52-data-sheet.pdf. [Accessed 8 June 2023]. Silicon Labs “EFM8BB52 Data Sheet,” Silicon Labs 2021 [Online]. Available: https://www.silabs.com/documents/public/data-sheets/efm8bb52-data-sheet.pdf. [Accessed 8 June 2023]. Search in Google Scholar

Amphenol, “P122 High Silicon Pressure Sensor Die,” Amphenol, 2018. [Online]. Available: https://www.amphenol-sensors.com/en/novasensor/pressure-sensor-die/3166-p122. [Accessed 11 November 2022]. Amphenol “P122 High Silicon Pressure Sensor Die,” Amphenol 2018 [Online]. Available: https://www.amphenol-sensors.com/en/novasensor/pressure-sensor-die/3166-p122. [Accessed 11 November 2022]. Search in Google Scholar

NuVasive, “Coroent Thoracolumbar System Patient Information Leaflet,” NuVasive, 1 December 2021. [Online]. Available: https://www.nuvasive.com/wp-content/uploads/2021/11/CoRoent-Thoracolumbar-System-Patient-Information-Leaflet_Final.pdf. [Accessed 12 June 2023]. NuVasive “Coroent Thoracolumbar System Patient Information Leaflet,” NuVasive 1 December 2021 [Online]. Available: https://www.nuvasive.com/wp-content/uploads/2021/11/CoRoent-Thoracolumbar-System-Patient-Information-Leaflet_Final.pdf. [Accessed 12 June 2023]. Search in Google Scholar

PTC, “Creo Parametric 3D Modelling Software,” PTC, 2023. [Online]. Available: https://www.ptc.com/en/products/creo/parametric. [Accessed 12 June 2023]. PTC “Creo Parametric 3D Modelling Software,” PTC 2023 [Online]. Available: https://www.ptc.com/en/products/creo/parametric. [Accessed 12 June 2023]. Search in Google Scholar

Chinthaka Pasan Gooneratne, Subhas Mukhopadhyay, Bodong Li, Guodong Zhan, Arturo Magana-Mora and Timothy Eric Moellendick, Triboelectric energy harvesting with pipe-in-pipe structure, US Patent 11,421,513, 2022. GooneratneChinthaka Pasan MukhopadhyaySubhas LiBodong ZhanGuodong Magana-MoraArturo MoellendickTimothy Eric Triboelectric energy harvesting with pipe-in-pipe structure US Patent 11,421,513, 2022 Search in Google Scholar

Keysight Technologies, “U1730C Series Handheld LCR Meters,” Keysight Technologies, 18 October 2018. [Online]. Available: https://www.keysight.com/au/en/assets/7018-02950/data-sheets/5990-7778.pdf. [Accessed 12 June 2023]. Keysight Technologies “U1730C Series Handheld LCR Meters,” Keysight Technologies 18 October 2018 [Online]. Available: https://www.keysight.com/au/en/assets/7018-02950/data-sheets/5990-7778.pdf. [Accessed 12 June 2023]. Search in Google Scholar

Onsemi, “1N5820, 1N5821, 1N5822 - Axial Lead Rectifiers,” Onsemi, December 2007. [Online]. Available: https://www.onsemi.com/pdf/data-sheet/1n5820-d.pdf. [Accessed 10 June 2023]. Onsemi “1N5820, 1N5821, 1N5822 - Axial Lead Rectifiers,” Onsemi December 2007 [Online]. Available: https://www.onsemi.com/pdf/data-sheet/1n5820-d.pdf. [Accessed 10 June 2023]. Search in Google Scholar

J. Harries, T. H. Jochimsen, T. Scholz, T. Schlender, H. Barthel, O. Sabri and B. Sattler, “A realistic phantom of the human head for PET-MRI,” EJNMMI Physics, vol. 7, no. 1, p. 52, 2020. HarriesJ. JochimsenT. H. ScholzT. SchlenderT. BarthelH. SabriO. SattlerB. “A realistic phantom of the human head for PET-MRI,” EJNMMI Physics 7 1 52 2020 Search in Google Scholar

Nguyen Thi Phuoc Van, Syed Faraz Hasan, Xiang Gui, Subhas Mukhopadhyay, Hung Tran, Three-step two-way decode and forward relay with energy harvesting, IEEE Communications Letters, Vol. 21, Issue 4, pp. 857–860, 2016. Phuoc VanNguyen Thi HasanSyed Faraz GuiXiang MukhopadhyaySubhas TranHung Three-step two-way decode and forward relay with energy harvesting IEEE Communications Letters 21 4 857 860 2016 Search in Google Scholar

Vivek AS Ramakrishna, Uphar Chamoli, Alessandro G Larosa, Subhas C Mukhopadhyay, B Gangadhara Prusty, Ashish D Diwan, A biomechanical comparison of posterior fixation approaches in lumbar fusion using computed tomography based lumbosacral spine modelling, Proceedings of the Institution of Mechanical Engineers, Part H: Journal of Engineering in Medicine, SAGE Publishing, vol. 237, Issue 2, pp. 243–253, 2023. RamakrishnaVivek AS ChamoliUphar LarosaAlessandro G MukhopadhyaySubhas C Gangadhara PrustyB DiwanAshish D A biomechanical comparison of posterior fixation approaches in lumbar fusion using computed tomography based lumbosacral spine modelling Proceedings of the Institution of Mechanical Engineers, Part H: Journal of Engineering in Medicine, SAGE Publishing 237 2 243 253 2023 Search in Google Scholar

H. E. Jaramillo, L. Gómez and J. J. García, “A finite element model of the L4-L5-S1 human spine segment including the heterogeneity and anisotropy of the discs,” Acta of Bioengineering and Biomechanics, vol. 17, no. 2, p. 15–24, 2015. JaramilloH. E. GómezL. GarcíaJ. J. “A finite element model of the L4-L5-S1 human spine segment including the heterogeneity and anisotropy of the discs,” Acta of Bioengineering and Biomechanics 17 2 15 24 2015 Search in Google Scholar

Texas Instruments, “TMP117 High-Accuracy, Low-Power, Digital Temperature Sensor With SMBus™ - and I2C-Compatible Interface,” Texas Instruments, September 2022. [Online]. Available: https://www.ti.com/lit/ds/symlink/tmp117.pdf?ts=1668131690221. [Accessed 11 November 2022]. Texas Instruments “TMP117 High-Accuracy, Low-Power, Digital Temperature Sensor With SMBus™ - and I2C-Compatible Interface,” Texas Instruments September 2022 [Online]. Available: https://www.ti.com/lit/ds/symlink/tmp117.pdf?ts=1668131690221. [Accessed 11 November 2022]. Search in Google Scholar

Core Electronics, “PiicoDev Precision Temperature Sensor TMP117,” Core Electronics, 2023. [Online]. Available: https://core-electronics.com.au/piicodev-precision-temperature-sensor-tmp117.html. [Accessed 6 June 2023]. Core Electronics “PiicoDev Precision Temperature Sensor TMP117,” Core Electronics 2023 [Online]. Available: https://core-electronics.com.au/piicodev-precision-temperature-sensor-tmp117.html. [Accessed 6 June 2023]. Search in Google Scholar

Python, “Python Programing Language,” Python, 2023. [Online]. Available: https://www.python.org/. [Accessed 6 June 2023]. Python “Python Programing Language,” Python 2023 [Online]. Available: https://www.python.org/. [Accessed 6 June 2023]. Search in Google Scholar

PuTTY, “PuTTY Program,” PuTTY, 2023. [Online]. Available: https://www.putty.org/. [Accessed 6 June 2023]. PuTTY “PuTTY Program,” PuTTY 2023 [Online]. Available: https://www.putty.org/. [Accessed 6 June 2023]. Search in Google Scholar

Raspberry Pi, “Raspberry Pi Zero W,” Raspberry Pi, 2023. [Online]. Available: https://www.raspberrypi.com/products/raspberry-pi-zero-w/. [Accessed 6 June 2023]. Raspberry Pi “Raspberry Pi Zero W,” Raspberry Pi 2023 [Online]. Available: https://www.raspberrypi.com/products/raspberry-pi-zero-w/. [Accessed 6 June 2023]. Search in Google Scholar

J. P. Sanjurjo, E. Prefasi, C. Buffa and R. Gaggl, “A Capacitance-To-Digital Converter for MEMS Sensors for Smart Applications,” Sensors, vol. 17, no. 6, p. 1312, 2017. SanjurjoJ. P. PrefasiE. BuffaC. GagglR. “A Capacitance-To-Digital Converter for MEMS Sensors for Smart Applications,” Sensors 17 6 1312 2017 Search in Google Scholar

Z. Tan, H. Jiang, H. Zhang, X. Tang, H. Xin and S. Nihtianov, “Power-Efficiency Evolution of Capacitive Sensor Interfaces,” IEEE Sensors Journal, vol. 21, no. 11, p. 12457–12468, 2021. TanZ. JiangH. ZhangH. TangX. XinH. NihtianovS. “Power-Efficiency Evolution of Capacitive Sensor Interfaces,” IEEE Sensors Journal 21 11 12457 12468 2021 Search in Google Scholar

Rectron Semiconductor, “Single-Phase Silicon Bridge Rectifier BR1005 Thru BR1010,” Rectron Semiconductor, May 2001. [Online]. Available: https://www.jaycar.com.au/medias/sys_master/images/images/9965579567134/ZR1320-dataSheetMain.pdf. [Accessed 6 June 2023]. Rectron Semiconductor “Single-Phase Silicon Bridge Rectifier BR1005 Thru BR1010,” Rectron Semiconductor May 2001 [Online]. Available: https://www.jaycar.com.au/medias/sys_master/images/images/9965579567134/ZR1320-dataSheetMain.pdf. [Accessed 6 June 2023]. Search in Google Scholar

F. Durmus and S. Karagol, “Mutual Inductance Calculation for Planar Square and Hexagonal Coils,” Arabian Journal for Science and Engineering, vol. 47, no. 3, p. 3409–3420, 2022. DurmusF. KaragolS. “Mutual Inductance Calculation for Planar Square and Hexagonal Coils,” Arabian Journal for Science and Engineering 47 3 3409 3420 2022 Search in Google Scholar

Vivek AS Ramakrishna, Uphar Chamoli, Alessandro G Larosa, Subhas C Mukhopadhyay, B Gangadhara Prusty, Ashish D Diwan, Finite element modeling of temporal bone graft changes in XLIF: Quantifying biomechanical effects at adjacent levels, Journal of Orthopaedic Research®, Vol. 40, Issue, 6, pp. 1420–1435, 2022. RamakrishnaVivek AS ChamoliUphar LarosaAlessandro G MukhopadhyaySubhas C Gangadhara PrustyB DiwanAshish D Finite element modeling of temporal bone graft changes in XLIF: Quantifying biomechanical effects at adjacent levels Journal of Orthopaedic Research® 40 6 1420 1435 2022 Search in Google Scholar

Keysight Technologies, “N2791A 25 MHz High Voltage Differential Probe,” Keysight Technologies, 13 September 2021. [Online]. Available: https://www.keysight.com/au/en/assets/7018-02105/data-sheets/5990-3780.pdf. [Accessed 10 June 2023]. Keysight Technologies “N2791A 25 MHz High Voltage Differential Probe,” Keysight Technologies 13 September 2021 [Online]. Available: https://www.keysight.com/au/en/assets/7018-02105/data-sheets/5990-3780.pdf. [Accessed 10 June 2023]. Search in Google Scholar

Gunjan Gupta and Robert Van Zyl Energy harvested end nodes and performance improvement of LoRa networks, International Journal on Smart Sensing and Intelligent Systems, VOLUME 14 (2021): ISSUE 1 (JANUARY 2021), Mar 01, 202, 15 pages, DOI: DOI: 10.21307/ijssis-2021-002. GuptaGunjan Van ZylRobert Energy harvested end nodes and performance improvement of LoRa networks International Journal on Smart Sensing and Intelligent Systems 14 2021 1 (JANUARY 2021), Mar 01, 202 15 pages, DOI: 10.21307/ijssis-2021-002 Open DOISearch in Google Scholar

M. Tanaka, S. Sonawane, Y. Fujiwara, K. Uotani, T. Yamauchi, T. Omori and K. Hashizume, “Surgical treatment for spondyloptosis: A case report,” Interdisciplinary Neurosurgery : Advanced Techniques and Case Management, vol. 25, p. 101161, 2021. TanakaM. SonawaneS. FujiwaraY. UotaniK. YamauchiT. OmoriT. HashizumeK. “Surgical treatment for spondyloptosis: A case report,” Interdisciplinary Neurosurgery : Advanced Techniques and Case Management 25 101161 2021 Search in Google Scholar

H. J. Kim, V. Nemani, O. Boachie-Adjei, M. E. Cunningham, J. A. Iorio, K. O’Neill, B. J. Neuman and L. G. Lenke, “Distal Fusion Level Selection in Scheuermann’s Kyphosis: A Comparison of Lordotic Disc Segment Versus the Sagittal Stable Vertebrae,” Global Spine Journal, vol. 7, no. 3, p. 254–259, 2017. KimH. J. NemaniV. Boachie-AdjeiO. CunninghamM. E. IorioJ. A. O’NeillK. NeumanB. J. LenkeL. G. “Distal Fusion Level Selection in Scheuermann’s Kyphosis: A Comparison of Lordotic Disc Segment Versus the Sagittal Stable Vertebrae,” Global Spine Journal 7 3 254 259 2017 Search in Google Scholar

M. S. Park, S.-H. Moon, T.-H. Kim, J. K. Oh, H. J. Kang and K. D. Riew, “Radiographic Comparison between Cervical Spine Lateral and Whole-Spine Lateral Standing Radiographs,” Global Spine Journal, vol. 6, no. 2, p. 118–123, 2016. ParkM. S. MoonS.-H. KimT.-H. OhJ. K. KangH. J. RiewK. D. “Radiographic Comparison between Cervical Spine Lateral and Whole-Spine Lateral Standing Radiographs,” Global Spine Journal 6 2 118 123 2016 Search in Google Scholar

International Organization for Standardization, “ISO 10993-1:2018,” International Organization for Standardization, October 2018. [Online]. Available: https://www.iso.org/standard/68936.html. [Accessed 12 June 2023]. International Organization for Standardization “ISO 10993-1:2018,” International Organization for Standardization October 2018 [Online]. Available: https://www.iso.org/standard/68936.html. [Accessed 12 June 2023]. Search in Google Scholar

Keysight Technologies, “U1230 Series - Handheld Digital Multimeteres,” Keysight Technologies, 22 February 2022. [Online]. Available: https://www.keysight.com/au/en/assets/7018-02915/data-sheets/5990-7550.pdf. [Accessed 12 June 2023]. Keysight Technologies “U1230 Series - Handheld Digital Multimeteres,” Keysight Technologies 22 February 2022 [Online]. Available: https://www.keysight.com/au/en/assets/7018-02915/data-sheets/5990-7550.pdf. [Accessed 12 June 2023]. Search in Google Scholar

Language:
English
Publication timeframe:
1 times per year
Journal Subjects:
Engineering, Introductions and Overviews, Engineering, other