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H. Yueshun, Z. Wei, The Research On Wireless Sensor Network For Landslide Monitoring, International Journal on Smart Sensing And Intelligent Systems, Vol. 6, No. 3, June 2013.10.21307/ijssis-2017-570 Search in Google Scholar

C.J. Chen, J.A Chen and Y.M Huang, Intelligent Environmental Sensing With an Unmanned Aerial System in a Wireless Sensor Network, International Journal on Smart Sensing And Intelligent Systems, Vol.10, No.3, September 2017.10.21307/ijssis-2017-230 Search in Google Scholar

P.J. Mullholand, J.N. Houser and O.K. Maloney, Stream diurnal dissolved oxygen profiles as indicators of in-stream metabolism and disturbance effects: Fort Benning as a case study, Ecological Indicators 5(3), pp. 243-252, August 2005.10.1016/j.ecolind.2005.03.004 Search in Google Scholar

W. Yang; X. Wei; S. Choi, A Dual-Channel, Interference-Free, Bacteria-B ased Biosensor for Highly Sensitive Water Quality Monitoring, IEEE Journals & Magazines, Volume: 16, Issue: 24, Pages: 8672 – 8677, Year: 2016.10.1109/JSEN.2016.2570423 Search in Google Scholar

R.J. Williams, C. White, M.L. Harrow and C. Neal, Temporal and small-scale spatial variations of dissolved oxygen in the Rivers Thames, Pang and Kennet, UK., Science of the Total Environment, pp. 251-252: pp. 497-510, May 2000.10.1016/S0048-9697(00)00401-0 Search in Google Scholar

E. Sanchez, M.F. Colmenarejo, J. Vicente, A. Rubio, M.G. Garcia, L. Travieso and R. Borja, Use of the water quality index and dissolved oxygen deficit as simple indicators of watersheds pollution, Ecological Indicators 7, pp. 315–328, 2007.10.1016/j.ecolind.2006.02.005 Search in Google Scholar

T. Mitsunaka; D. Sato; N. Ashida; A. Saito; K. Iizuka; T. Suzuki; Y. Ogawa; M. Fujishima, CMOS Biosensor IC Focusing on Dielectric Relaxations of Biological Water With 120 and 60 GHz Oscillator Arrays, IEEE Journal of Solid-State Circuits, Volume: 51, Issue: 11, Pages: 2534 – 2544, 2016.10.1109/JSSC.2016.2605001 Search in Google Scholar

A. El Jay, Effects of organic solvents and solvent-atrazine interactions on two algae, Chlorella vulgaris and Selenastrum capricornutum, Archives of Environmental Contamination and Toxicology 31 (1), pp. 84–90, 1996.10.1007/BF002039118687994 Search in Google Scholar

U. Lazuardi, F.A. Alexander and J. Wiest, Application of Algae-Biosensor for Environmental Monitoring, Proc. 37th Annual International Conference of the IEEE Engineering in Medicine and Biology Society (EMBC) Milan, pp. 7099-7102, 2015. Search in Google Scholar

J. Wiest, T. Stadthagen, M. Schmidhuber, M. Brischwein, J. Ressler, U. Raeder, H. Grothe, A. Melzer and B. Wolf, Intelligent Mobile Lab for Metabolics in Environmental Monitoring, Journal Analytical Letters, Volume 39 - Issue 8, pp. 1759-1771, 2006. Search in Google Scholar

T. Stadthagen, Enwicklung eines online Gewässermonitorings-systems mittlesBiosensorchipszumNachweisausgewählter Xenobiotika, Dissertation at TU Muenchen Germany, 2007. Search in Google Scholar

F. Sekli Belaidi; A. Tsopela; L. Salvagnac; V. Ventalon; E. Bedel-Pereira; V. Bardinal; I. Séguy; P. Temple-Boyer; P. Juneau; R. Izquierdo; J. Launay, Lab-on-chip with microalgal based biosensor for water assessment, 2016 IEEE Nanotechnology Materials and Devices Conference (NMDC).10.1109/NMDC.2016.7777103 Search in Google Scholar

U. Lazuardi, R.N. Setiadi, H. Yanuar, M.L. Tetty, Biosensor based on biochip-G for dissolved oxygen detection from photosynthesis process of green algae Chlorella vulgaris, ICON-SONICS 2017.10.1109/ICON-SONICS.2017.8267835 Search in Google Scholar

M.M. Ahmadi, G.A. Jullien, “Current-Mirror-Based Potentiostats for Three-Electrode Amperometric Electrochemical Sensors,” IEEE Trans. on Circuits and Systems—I: Regular Papers, Vol. 56, No. 7 pp. 1339-1348, July 2009. Search in Google Scholar

E. Wilkins and P. Atanosov, “Glucose monitoring: State of the art and future possibilities,” Med. Eng. Phys., vol. 18, no. 4, pp. 273–288, Jun. 1996.10.1016/1350-4533(95)00046-1 Search in Google Scholar

L. Busoni, M. Carla, L. Lanzi, “A comparison between potentiostatic circuits with grounded work or auxiliary electrode,” Rev. Sci. Instrum., vol. 73, no. 4, pp. 1921–1923, 2002. Search in Google Scholar

R. Doelling, “Potentiostats,” in Bank Elektronik Application Note, 2nd ed. Clausthal- Zellerfeld, Germany: Bank Elektroni–Intelligent Controls GmbH, Mar. 2000. Search in Google Scholar

R. Greef, “Instruments for use in electrode process research,”J. Phys. E, Sci. Instrum., vol. 11, no. 1, pp. 1–12, Jan. 1978.10.1088/0022-3735/11/1/001 Search in Google Scholar

W. Marshall Leach, Fundamentals of Low-Noise Analog Circuit Design, PROCEEDINGS OF THE IEEE. VOL. 82, NO.IO. OCTOBER 199410.1109/5.326411 Search in Google Scholar

E.R-Villegas, A Low-Power Wide-Range I-V Converter for Amperometric Sensing Applications, IEEE TRANSACTIONS ON BIOMEDICAL CIRCUITS AND SYSTEMS, VOL. 3, NO. 6, DECEMBER 2009.10.1109/TBCAS.2009.203209523853290 Search in Google Scholar

http://ccala.butbn.cas.cz/en/chlorella-vulgaris-beijerinck-9. Search in Google Scholar

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