Cite

Adams L., Essien E., Adesalu T., Julius M., 2017. Bioactive Glass 45S5 from Diatom Biosilica, Journal of Science: Advanced Materials and Devices 2, 476-482. Search in Google Scholar

Arcaro S., Goulart de Oliveira Maia B., Tramontin Souza M. et al., 2016. Thermal Insulating Foams Produced From Glass Waste and Banana Leaves, Materials Research 19. Search in Google Scholar

Borden M., WesterlundL. E., Lovric V., Walsh W., 2022. Controlling the bone regeneration properties of bioactive glass: Effect of particle shape and size, Journal of biomedical materials research, Applied biomaterials 110(4), 910-922. Search in Google Scholar

Borkowski, S., Ulewicz, R., Selejdak, J., Konstanciak, M., Klimecka-Tatar, D., 2012. The use of 3x3 matrix to evaluation of ribbed wire manufacturing technology, METAL 2012 – 21st International Conference on Metallurgy and Materials, 1722-1728.. Search in Google Scholar

Cannio M., Belluci D., Roether J. A., Boccaccini D. N., Cannillo V., 2021. Bioactive Glass Applications: A Literature Review of Human Clinical Trials, Materials (Basel, Switzerland) 14(18):5440. Search in Google Scholar

Chakraborty S., Uppaluri R., Das C., 2020. Effect of Pore Former (Saw Dust) Characteristics on the Properties of Sub-micron Range, Low Cost Ceramic Membranes, International Journal of Ceramic Engineering & Science 2(5), 243-253. Search in Google Scholar

Daskalakis E., Liu F., Cooper G., Weightman A., Koc B., Blunn G., Bártolo, P., 2021. Bioglasses for Bone Tissue Engineering. Bio-Materials and Prototyping, Applications in Medicine 4,165-193. Search in Google Scholar

Dávalos J., Bonilla A., Villaquirán-Caicedo M. A., 2020. Preparation of glass–ceramic materials from coal ash and rice husk ash: Microstructural, physical and mechanical properties, Boletín de la Sociedad Española de Cerámica y Vidrio 60(3), 183-193. Search in Google Scholar

Dziadek M., Pawlik J., Cholewa-Kowalska K., 2015. Szkła bioaktywne w inżynierii tkankowej, Inżynieria Biomedyczna 20, 156-165. Search in Google Scholar

El-Wassefy N., Özcan M., Abo El-Farag S. A., 2021. Effect of Simultaneous Sintering of Bioglass to a Zirconia Core on Properties and Bond Strength, Materials (Basel, Switzerland) 14(23) :7107. Search in Google Scholar

Erasmus E., Johnson O., Sigalas I., Massera J., 2017. Effects of Sintering Temperature on Crystallization and Fabrication of Porous Bioactive Glass Scaffolds for Bone Regeneration, Scientific Reports 7:6046. Search in Google Scholar

Espinal L., 2012. Porosity and Its Measurement, Characterization of Materials, 1-10. Search in Google Scholar

Fernandes H.; Ferreira D., Andreola F. et al., 2014. Environmental friendly management of CRT glass by foaming with waste egg shells, calcite or dolomite, Ceramics Internationa 40(8), 371-379. Search in Google Scholar

Fu Q., Saiz E., Rahaman N., Tomsia A., 2011. Bioactive Glass Scaffolds for Bone Tissue Engineering: State of the Art and Future Perspectives, Mater Sci Eng C Mater Biol App 31(7), 1245-1256. Search in Google Scholar

Gerhardt L. C.; Boccaccini A. R., 2010. Bioactive Glass and Glass-Ceramic Scaffolds for Bone Tissue Engineering, Materials (Basel, Switzerland), 3867-3910. Search in Google Scholar

Giglio R., Vieste G., Mondello T., Balduzzi G., Masserini B., Formenti I. et al., 2020. Efficacy and Safety of Bioactive Glass S53P4 as a Treatment for Diabetic Foot Osteomyelitis, The Journal of Foot and Ankle Surgery 60(2), 292-296. Search in Google Scholar

Hakim I. M., Mustaffar M., Ismail S., Ismail A., 2022. A Review of Porous Glass-Ceramic Production Process, Properties and Applications, Journal of Physics: Conference Series, 2169. Search in Google Scholar

Hench L. L., 2006. The Story of Bioglass, Journal of Materials Science. Materials in Medicine 17(11), 967-978. Search in Google Scholar

Kaur G., Pandey O. P., Singh K., Homa D., Scot B., Pickrell G., 2014. A review of bioactive glasses: Their structure, properties, fabrication and apatite formation, Journal of biomedical materials research Part A 102(1), 254-274. Search in Google Scholar

Kokubo T., Takadama H., 2006. How useful is SBF in predicting in vivo bone bioactivity?, Biomaterials 27, 2907-2915. Search in Google Scholar

Kuzior, A., Zozul'ak, J., 2019. Adaptation of the Idea of Phronesis in Contemporary Approach to Innovation, Management Systems in Production Engineering, 27(2), 84-87. DOI: 10.1515/mspe-2019-0014 Search in Google Scholar

Leenakul W., Tunkasiri T., Tongsiri N. et al., 2016. Effect of sintering temperature variations on fabrication of 45S5 bioactive glass-ceramics using rice husk as a source for silica, Materials Science and Engineering C 61, 695-704. Search in Google Scholar

Lubas M., Zawada A., Przerada I., Iwaszko J., 2017. Stopień rozdrobnienia surowca spieniającego a porowatość szkła piankowego, Szkło i Ceramika 5, 19-22. Search in Google Scholar

Mabrouk M., 2015. PhD: Preparation of PVA/Bioactive Glass nanocomposite scaffolds. In vitro studies for applications as biomaterials. Association with active molecules. Search in Google Scholar

Mazzoni E., Iaquinta M., Lanzillotti, C. et al., 2021. Bioactive Materials for Soft Tissue Repair, Frontiers in Bioengineering and Biotechnology 9:613787. Search in Google Scholar

Montazerian M., Zanotto E., 2016. Bioactive Glass-ceramics: Processing, Properties and Applications, Bioactive Glasses: Fundamentals, Technology and Applications, 27-60. Search in Google Scholar

Opydo, M., Dudek, A., Kobyłecki, R., 2019. Characteristics of solids accumulation on steel samples during co-combustion of biomass and coal in a CFB boiler, Biomass and Bioenergy, 120, 291-300. DOI: 10.1016/j.biombioe.2018.11.027 Search in Google Scholar

Pantulap U. M., Arango O., Boccaccini, A., 2022. Bioactive glasses incorporating lesscommon ions to improve biological and physical properties, Journal of Materials Science: Materials in Medicine 33:3. Search in Google Scholar

Pereira M., Oliveira J., Fonseca C., 2021. Influence of the use of rice husk as source of silica on the sol-gel synthesis of bioglass, Cerâmica 67, 333-337. Search in Google Scholar

Pietraszek, J., Radek, N., Goroshko, A.V., 2020. Challenges for the DOE methodology related to the introduction of Industry 4.0, Production Engineering Archives, 26(4), 190-194. DOI: 10.30657/pea.2020.26.33 Search in Google Scholar

Radek, M., Pietraszek, A., Kozień, A., Radek, K., Pietraszek, J., 2023. Matching Computational Tools to User Competence Levels in Education of Engineering Data Processing, Materials Research Proceedings, 34, 453-459. DOI: 10.21741/9781644902691-52 Search in Google Scholar

Radek, N., Pietraszek, J., Pasieczynski, Ł., 2019. Technology and application of antigraffiti coating systems for rolling stock, METAL 2019 – 28th Int. Conf. on Metallurgy and Materials, 1127-1132. DOI: 10.37904/metal.2019.909 Search in Google Scholar

Scendo, M., Radek, N., Trela, J., 2013. Influence of laser treatment on the corrosive resistance of WC-Cu coating produced by electrospark deposition, International Journal of Electrochemical Science, 8(7), 9264-9277. Search in Google Scholar

Scendo, M., Trela, J., Radek, N., 2012. Purine as an effective corrosion inhibitor for stainless steel in chloride acid solutions, Corrosion Reviews, 30(1-2), 33-45. DOI: 10.1515/CORRREV-2011-0039 Search in Google Scholar

Serbena F., Mathias I., Foerster C., Zanotto E., 2015. Crystallization toughening of a model glass-ceramic, Acta Materialia 86, 216-228. Search in Google Scholar

Serna-Jiménez J. A.; Luna-Lama F., Caballero Á. et al, 2021. Valorisation of Banana Peel Waste as a Precursor Material for Different Renewable Energy Systems, Biomass and bioenergy 155:106279. Search in Google Scholar

Ulewicz, R., 2018. Outsorcing quality control in the automotive industry, MATEC Web of Conf., 183, art.03001. DOI: 10.1051/matecconf/201818303001 Search in Google Scholar

Yang S., Leong K. F., Du Z., Chua C. K., 2001. The design of scaffolds for use in tissue engineering. Part I. Traditional factors, Tissue engineering 7(6), 679–689. Search in Google Scholar

Youssef H., Safwa N., Shehata R. et al., 2022. Synthesis of Natural Nano-Hydroxyapatite from Snail Shells and Its Biological Activity: Antimicrobial, Antibiofilm, Membranes 12(4), 408. Search in Google Scholar

Zaini H., Roslan J., Saallah S. et al., 2022. Banana peels as a bioactive ingredient and its potential application in the food industry, Journal of Functional Foods 92. Search in Google Scholar

Zhang R., Qi J., Gong M. et al., 2021. Effects of 45S5 bioactive glass on the remineralization of early carious lesions in deciduous teeth: an in vitro study, BMC Oral Health 21(1):576. Search in Google Scholar