37. Jayawardane, B. M., McKelvie, I. D., & Kolev, S. D. (2015). Development of a
gas-diffusion microfluidic paper-based analytical device (lPAD) for the determination of
ammonia in wastewater samples. Analytical Chemistry, 87(9), 4621–4626.
38. Lopez-Ruiz, N., Curto, V. F., Erenas, M. M., Benito-Lopez, F., Diamond, D., Palma, A. J.,
et al. (2014). Smartphone-based simultaneous pH and nitrite colorimetric determination for
paper microfluidic devices. Analytical Chemistry, 86(19), 9554–9562. https://doi.org/10.
1021/ac5019205.
39. Turner, A. P. (2000). Biosensors–sense and sensitivity. Science, 290(5495), 1315–1317.
40. Ivars-Barceló, F., Zuliani, A., Fallah, M., Mashkour, M., Rahimnejad, M., & Luque, R.
(2018). Novel applications of microbial fuel cells in sensors and biosensors. Applied
Sciences, 8(7), 1184. https://doi.org/10.3390/app8071184.
41. Zeng, L., Gong, J., Rong, P., Liu, C., & Chen, J. (2019). A portable and quantitative
biosensor for cadmium detection using glucometer as the point-of-use device. Talanta, 198,
412–416. https://doi.org/10.1016/j.talanta.2019.02.045.
42. Wee, Y., Park, S., Kwon, Y. H., Ju, Y., Yeon, K. M., & Kim, J. (2019).
Tyrosinase-immobilized CNT based biosensor for highly-sensitive detection of phenolic
compounds. Biosensors & Bioelectronics. https://doi.org/10.1016/j.bios.2019.03.008.
43. Yu, Y., Yu, C., Gao, R., Chen, J., Zhong, H., Wen, Y., et al. (2019). Dandelion-like CuO
microspheres decorated with Au nanoparticle modified biosensor for Hg
2+ detection using a
T-Hg
2+ -T triggered hybridization chain reaction amplification strategy. Biosensors &
Bioelectronics, 131, 207–213. https://doi.org/10.1016/j.bios.2019.01.063.
44. 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. https://doi.org/10.1016/j.snb.2015.04.
076.
45. Nomngongo, P. N., Ngila, J. C., Msagati, T. A., Gumbi, B. P., & Iwuoha, E. I. (2012).
Determination of selected persistent organic pollutants in wastewater from landfill leachates,
using an amperometric biosensor. Physics and Chemistry of the Earth, Parts A/B/C, 50,
252–261. https://doi.org/10.1016/j.pce.2012.08.001.
46. Yamashita, T., Ookawa, N., Ishida, M., Kanamori, H., Sasaki, H., Katayose, Y., et al.
(2016). A novel open-type biosensor for the in-situ monitoring of biochemical oxygen
demand in an aerobic environment. Scientific Reports, 6, 38552.
47. 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. https://doi.org/10.1016/j.bios.2017.03.043.
48. Verma, N., Sharma, R., & Kumar, S. (2016). Advancement towards microfluidic approach to
develop economical disposable optical biosensor for lead detection. Austin Journal of
Biosensors & Bioelectronics, 2(2), 1021.
49. Qiu, G., Ng, S. P., & Wu, C.-M. L. (2018). Bimetallic Au-Ag alloy nanoislands for highly
sensitive localized surface plasmon resonance biosensing. Sensors and Actuators B:
Chemical, 265, 459–467. https://doi.org/10.1016/j.snb.2018.03.066.
50. Guo, B., Wen, B., Cheng, W., Zhou, X., Duan, X., Zhao, M., et al. (2018). An enzyme-free
and label-free surface plasmon resonance biosensor for ultrasensitive detection of fusion
gene based on DNA self-assembly hydrogel with streptavidin encapsulation. Biosensors &
Bioelectronics, 112, 120–126. https://doi.org/10.1016/j.bios.2018.04.027.
51. Kassal, P., Steinberg, M. D., & Steinberg, I. M. (2018). Wireless chemical sensors and
biosensors: A review. Sensors and Actuators B: Chemical, 266, 228–245. https://doi.org/10.
1016/j.snb.2018.03.074.
52. Yildirim, N., Long, F., & Gu, A. Z. (2014). Aptamer based E-coli detection in waste waters
by portable optical biosensor system. In: 2014 40th Annual Northeast Bioengineering
Conference (NEBEC) 2014 (pp. 1–3). IEEE.
53. Chouler, J., & Di Lorenzo, M. (2015). Water quality monitoring in developing countries;
Can microbial fuel cells be the answer? Biosensors, 5(3), 450–470. https://doi.org/10.3390/
bios5030450.
Emerging Techniques and Materials for Water Pollutants Detection
293
gas-diffusion microfluidic paper-based analytical device (lPAD) for the determination of
ammonia in wastewater samples. Analytical Chemistry, 87(9), 4621–4626.
38. Lopez-Ruiz, N., Curto, V. F., Erenas, M. M., Benito-Lopez, F., Diamond, D., Palma, A. J.,
et al. (2014). Smartphone-based simultaneous pH and nitrite colorimetric determination for
paper microfluidic devices. Analytical Chemistry, 86(19), 9554–9562. https://doi.org/10.
1021/ac5019205.
39. Turner, A. P. (2000). Biosensors–sense and sensitivity. Science, 290(5495), 1315–1317.
40. Ivars-Barceló, F., Zuliani, A., Fallah, M., Mashkour, M., Rahimnejad, M., & Luque, R.
(2018). Novel applications of microbial fuel cells in sensors and biosensors. Applied
Sciences, 8(7), 1184. https://doi.org/10.3390/app8071184.
41. Zeng, L., Gong, J., Rong, P., Liu, C., & Chen, J. (2019). A portable and quantitative
biosensor for cadmium detection using glucometer as the point-of-use device. Talanta, 198,
412–416. https://doi.org/10.1016/j.talanta.2019.02.045.
42. Wee, Y., Park, S., Kwon, Y. H., Ju, Y., Yeon, K. M., & Kim, J. (2019).
Tyrosinase-immobilized CNT based biosensor for highly-sensitive detection of phenolic
compounds. Biosensors & Bioelectronics. https://doi.org/10.1016/j.bios.2019.03.008.
43. Yu, Y., Yu, C., Gao, R., Chen, J., Zhong, H., Wen, Y., et al. (2019). Dandelion-like CuO
microspheres decorated with Au nanoparticle modified biosensor for Hg
2+ detection using a
T-Hg
2+ -T triggered hybridization chain reaction amplification strategy. Biosensors &
Bioelectronics, 131, 207–213. https://doi.org/10.1016/j.bios.2019.01.063.
44. 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. https://doi.org/10.1016/j.snb.2015.04.
076.
45. Nomngongo, P. N., Ngila, J. C., Msagati, T. A., Gumbi, B. P., & Iwuoha, E. I. (2012).
Determination of selected persistent organic pollutants in wastewater from landfill leachates,
using an amperometric biosensor. Physics and Chemistry of the Earth, Parts A/B/C, 50,
252–261. https://doi.org/10.1016/j.pce.2012.08.001.
46. Yamashita, T., Ookawa, N., Ishida, M., Kanamori, H., Sasaki, H., Katayose, Y., et al.
(2016). A novel open-type biosensor for the in-situ monitoring of biochemical oxygen
demand in an aerobic environment. Scientific Reports, 6, 38552.
47. 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. https://doi.org/10.1016/j.bios.2017.03.043.
48. Verma, N., Sharma, R., & Kumar, S. (2016). Advancement towards microfluidic approach to
develop economical disposable optical biosensor for lead detection. Austin Journal of
Biosensors & Bioelectronics, 2(2), 1021.
49. Qiu, G., Ng, S. P., & Wu, C.-M. L. (2018). Bimetallic Au-Ag alloy nanoislands for highly
sensitive localized surface plasmon resonance biosensing. Sensors and Actuators B:
Chemical, 265, 459–467. https://doi.org/10.1016/j.snb.2018.03.066.
50. Guo, B., Wen, B., Cheng, W., Zhou, X., Duan, X., Zhao, M., et al. (2018). An enzyme-free
and label-free surface plasmon resonance biosensor for ultrasensitive detection of fusion
gene based on DNA self-assembly hydrogel with streptavidin encapsulation. Biosensors &
Bioelectronics, 112, 120–126. https://doi.org/10.1016/j.bios.2018.04.027.
51. Kassal, P., Steinberg, M. D., & Steinberg, I. M. (2018). Wireless chemical sensors and
biosensors: A review. Sensors and Actuators B: Chemical, 266, 228–245. https://doi.org/10.
1016/j.snb.2018.03.074.
52. Yildirim, N., Long, F., & Gu, A. Z. (2014). Aptamer based E-coli detection in waste waters
by portable optical biosensor system. In: 2014 40th Annual Northeast Bioengineering
Conference (NEBEC) 2014 (pp. 1–3). IEEE.
53. Chouler, J., & Di Lorenzo, M. (2015). Water quality monitoring in developing countries;
Can microbial fuel cells be the answer? Biosensors, 5(3), 450–470. https://doi.org/10.3390/
bios5030450.
Emerging Techniques and Materials for Water Pollutants Detection
293
