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82. Asadnia, M., Myers, M., Akhavan, N. D., O’Donnell, K., Umana-Membreno, G. A., Mishra,
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83. Biswas, P., Karn, A. K., Balasubramanian, P., & Kale, P. G. (2017). Biosensor for detection
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84. Turner, A. P. (2000). Biosensors–sense and sensitivity. Science, 290(5495), 1315–1317.
85. Weber, R., Watson, A., Forter, M., & Oliaei, F. (2011). Persistent organic pollutants and
landfills-a review of past experiences and future challenges. Waste Management and
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86. Wauchope, R. (1978). The pesticide content of surface water draining from agricultural
fields—a review 1. Journal of Environmental Quality, 7(4), 459–472.
87. Atar, N., Eren, T., Yola, M. L., & Wang, S. (2015). A sensitive molecular imprinted surface
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Sensors and Actuators B: Chemical, 216, 638–644.
88. D’souza, S. (2001). Microbial biosensors. Biosensors and Bioelectronics, 16(6),337–353
89. Ladwani, K. D., Ladwani, K. D., Ramteke, D. S., & Deo, S. (2016). Journal of Advanced
Chemical Sciences. Journal of Advanced Chemical Sciences, 2(2), 246–247.
90. Verma, N., & Singh, A. K. (2012). Development of biological oxygen demand biosensor for
monitoring the fermentation industry effluent. ISRN Biotechnology 2013
91. Nomura, Y., Chee, G. J., & Karube, I. (1998). Biosensor technology for determination of
BOD. Field Analytical Chemistry and Technology., 2(6), 333–340.
92. Karube, I., Matsunaga, T., & Mitsuda, S. (1977). Suzuki S (2009) Microbial Electrode BOD
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Biotechnology and Bioengineering, 102(3), 660–672.
93. Riedel, K., Renneberg, R., Kühn, M., & Scheller, F. (1988). A fast estimation of biochemical
oxygen demand using microbial sensors. Applied Microbiology and Biotechnology, 28(3),
316–318.
94. Kim, M.-N., & Kwon, H.-S. (1999). Biochemical oxygen demand sensor using Serratia
marcescens LSY 4. Biosensors & Bioelectronics, 14(1), 1–7.
95. Hikuma, M., Suzuki, H., Yasuda, Y., Karube, I., & Suzuki, S. (1979). Amperometric
estimation of BOD by using living immobilized yeasts. European journal of applied
microbiology and biotechnology, 8(4), 289–297.
96. Jia, J., Tang, M., Chen, X., Qi, L., & Dong, S. (2003). Co-immobilized microbial biosensor
for BOD estimation based on sol–gel derived composite material. Biosensors &
Bioelectronics, 18(8), 1023–1029.
97. Velling, S., & Tenno, T. (2009). Different calibration methods of a microbial BOD sensor
for analysis of municipal wastewaters. Sensors and Actuators B: Chemical, 141(1), 233–
238.
Materials in Bio-Sensing of Water Pollutants
209
An assessment of surface water quality for irrigation and its implications for human health in
the peri-urban zone of Kumasi, Ghana.
77. Bartram, J. (2009). Water safety plan manual: step-by-step risk management for
drinking-water suppliers. World Health Organization
78. Bates, B., Kundzewicz, Z., & Wu, S. (2008). Climate change and water. Intergovernmental
Panel on Climate Change Secretariat
79. Michael-Kordatou, I., Michael, C., Duan, X., He, X., Dionysiou, D., Mills, M., et al. (2015).
Dissolved effluent organic matter: characteristics and potential implications in wastewater
treatment and reuse applications. Water Research, 77, 213–248.
80. Chong, S., Aziz, A., & Harun, S. (2013). Fibre optic sensors for selected wastewater
characteristics. Sensors, 13(7), 8640–8668.
81. Yang, L., Han, D. H., Lee, B.-M., & Hur, J. (2015). Characterizing treated wastewaters of
different industries using clustered fluorescence EEM–PARAFAC and FT-IR spectroscopy:
implications for downstream impact and source identification. Chemosphere, 127, 222–228.
82. Asadnia, M., Myers, M., Akhavan, N. D., O’Donnell, K., Umana-Membreno, G. A., Mishra,
U., et al. (2016). Mercury (II) selective sensors based on AlGaN/GaN transistors. Analytica
Chimica Acta, 943, 1–7.
83. Biswas, P., Karn, A. K., Balasubramanian, P., & Kale, P. G. (2017). Biosensor for detection
of dissolved chromium in potable water: a review. Biosensors & Bioelectronics, 94, 589–
604.
84. Turner, A. P. (2000). Biosensors–sense and sensitivity. Science, 290(5495), 1315–1317.
85. Weber, R., Watson, A., Forter, M., & Oliaei, F. (2011). Persistent organic pollutants and
landfills-a review of past experiences and future challenges. Waste Management and
Research, 29(1), 107–121.
86. Wauchope, R. (1978). The pesticide content of surface water draining from agricultural
fields—a review 1. Journal of Environmental Quality, 7(4), 459–472.
87. Atar, N., Eren, T., Yola, M. L., & Wang, S. (2015). A sensitive molecular imprinted surface
plasmon resonance nanosensor for selective determination of trace triclosan in wastewater.
Sensors and Actuators B: Chemical, 216, 638–644.
88. D’souza, S. (2001). Microbial biosensors. Biosensors and Bioelectronics, 16(6),337–353
89. Ladwani, K. D., Ladwani, K. D., Ramteke, D. S., & Deo, S. (2016). Journal of Advanced
Chemical Sciences. Journal of Advanced Chemical Sciences, 2(2), 246–247.
90. Verma, N., & Singh, A. K. (2012). Development of biological oxygen demand biosensor for
monitoring the fermentation industry effluent. ISRN Biotechnology 2013
91. Nomura, Y., Chee, G. J., & Karube, I. (1998). Biosensor technology for determination of
BOD. Field Analytical Chemistry and Technology., 2(6), 333–340.
92. Karube, I., Matsunaga, T., & Mitsuda, S. (1977). Suzuki S (2009) Microbial Electrode BOD
Sensors (Reprinted from Biotechnology and bioengineering, vol XIX, pg 1535-1547.
Biotechnology and Bioengineering, 102(3), 660–672.
93. Riedel, K., Renneberg, R., Kühn, M., & Scheller, F. (1988). A fast estimation of biochemical
oxygen demand using microbial sensors. Applied Microbiology and Biotechnology, 28(3),
316–318.
94. Kim, M.-N., & Kwon, H.-S. (1999). Biochemical oxygen demand sensor using Serratia
marcescens LSY 4. Biosensors & Bioelectronics, 14(1), 1–7.
95. Hikuma, M., Suzuki, H., Yasuda, Y., Karube, I., & Suzuki, S. (1979). Amperometric
estimation of BOD by using living immobilized yeasts. European journal of applied
microbiology and biotechnology, 8(4), 289–297.
96. Jia, J., Tang, M., Chen, X., Qi, L., & Dong, S. (2003). Co-immobilized microbial biosensor
for BOD estimation based on sol–gel derived composite material. Biosensors &
Bioelectronics, 18(8), 1023–1029.
97. Velling, S., & Tenno, T. (2009). Different calibration methods of a microbial BOD sensor
for analysis of municipal wastewaters. Sensors and Actuators B: Chemical, 141(1), 233–
238.
Materials in Bio-Sensing of Water Pollutants
209
