11. Shankaran, D. R., Gobi, K. V., & Miura, N. (2007). Recent advancements in surface
plasmon resonance immunosensors for detection of small molecules of biomedical, food and
environmental interest. Sensors Actuators, B Chemical, 121, 158–177.
12. Lin, T. J., Huang, K. T., & Liu, C. Y. (2006). Determination of organophosphorous
pesticides by a novel biosensor based on localized surface plasmon resonance. Biosensors &
Bioelectronics, 22, 513–518.
13. Santos, F. J., & Galceran, M. T. (2003). Modern developments in gas chromatography-mass
spectrometry-based environmental analysis. Journal of Chromatography A, 1000, 125–51.
14. Thurman, E. M., Goolsby, D. A., Meyer, M. T., Mills, M. S., Pomes, M. L., & Kolpin, D.
W. (1992). A reconnaissance study of herbicides and their metabolites in surface water of the
midwestern United States using immunoassay and gas chromatography/mass spectrometry.
Environmental Science & Technology, 26(12), 2440–2447.
15. Junker-Buchheit, A., & Witzenbacher, M. (1996). Pesticide monitoring of drinking water
with the help of solid-phase extraction and high-performance liquid chromatography.
Journal of Chromatography A, 737(1), 67–74.
16. Di Corcia, A., & Marchettl, M. (1992). Method development for monitoring pesticides in
environmental waters: Liquid-solid extraction followed by liquid chromatography.
Environmental Science and Technology, 26, 66–74.
17. Shum, S. C. K., Pang, H. M., & Houk, R. S. (1992). Speciation of mercury and lead
compounds by microbore column liquid chromatography-inductively coupled plasma mass
spectrometry with direct injection nebulization. Analytical Chemistry, 64, 2444–2450.
18. Mauter, M. S., & Elimelech, M. (2008). Environmental applications of carbon-based
nanomaterials. Environmental Science and Technology, 42, 5843–5859.
19. Ullah, N., Mansha, M., Khan, I., & Qurashi, A. (2018). Nanomaterial-based optical chemical
sensors for the detection of heavy metals in water: Recent advances and challenges. TrAC—
Trends in Analytical Chemistry, 100, 155–166.
20. Wang, J., & Lin, Y. (2008). Functionalized carbon nanotubes and nanofibers for biosensing
applications. TrAC Trends in Analytical Chemistry, 27, 619–626.
21. Matlock-Colangelo, L., & Baeumner, A. J. (2012). Recent progress in the design of
nanofiber-based biosensing devices. Lab on a Chip, 12, 2612.
22. Zhang, M., Zhao, X., Zhang, G., Wei, G., & Su, Z. (2017). Electrospinning design of
functional nanostructures for biosensor applications. Journal of Materials Chemistry B, 5,
1699–1711.
23. Teo, W. E., & Ramakrishna, S. (2006). A review on electrospinning design and nanofibre
assemblies. Nanotechnology, 17, R89–R106.
24. Li, D., & Xia, Y. (2004). Electrospinning of nanofibers: Reinventing the wheel? Advanced
Materials, 16, 1151–1170.
25. Srivastava, A. K., Mondal, K., Mukhopadhyay, K., Prasad, N. E., & Sharma, A. (2016).
Facile reduction of para-nitrophenols: Catalytic efficiency of silver nanoferns in batch and
continuous flow reactors. RSC Adv., 6, 113981–113990.
26. Li, Y., Abedalwafa, M. A., Tang, L., Li, D. & Wang, L. Electrospun nanofibers for sensors.
Electrospinning: Nanofabrication and Applications, 571–601 (William Andrew Publishing,
2019). https://doi.org/10.1016/b978-0-323-51270-1.00018-2
27. Schiffman, J. D., & Schauer, C. L. (2008). A review: Electrospinning of biopolymer
nanofibers and their applications. Polymer Reviews, 48, 317–352.
28. Stojanovska, E., et al. (2016). A review on non-electro nanofibre spinning techniques. RSC
Advances, 6, 83783–83801.
29. Esfahani, H., Jose, R., & Ramakrishna, S. (2017). Electrospun ceramic nanofiber mats today:
Synthesis, properties, and applications. Materials, 10, 1238.
30. Nayak, R., Padhye, R., Kyratzis, I. L., Truong, Y. B., & Arnold, L. (2012). Recent advances
in nanofibre fabrication techniques. Textile Research Journal, 82, 129–147.
31. Richards, A., van den Maagdenberg, A. M., Jen, J. C., Kavanagh, D., Bertram, P., Spitzer,
D., & McLellan, M. (2007). C-terminal truncations in human 3′-5′ DNA exonuclease
Nanofiber Based Sensors for Water Pollution Monitoring
315
plasmon resonance immunosensors for detection of small molecules of biomedical, food and
environmental interest. Sensors Actuators, B Chemical, 121, 158–177.
12. Lin, T. J., Huang, K. T., & Liu, C. Y. (2006). Determination of organophosphorous
pesticides by a novel biosensor based on localized surface plasmon resonance. Biosensors &
Bioelectronics, 22, 513–518.
13. Santos, F. J., & Galceran, M. T. (2003). Modern developments in gas chromatography-mass
spectrometry-based environmental analysis. Journal of Chromatography A, 1000, 125–51.
14. Thurman, E. M., Goolsby, D. A., Meyer, M. T., Mills, M. S., Pomes, M. L., & Kolpin, D.
W. (1992). A reconnaissance study of herbicides and their metabolites in surface water of the
midwestern United States using immunoassay and gas chromatography/mass spectrometry.
Environmental Science & Technology, 26(12), 2440–2447.
15. Junker-Buchheit, A., & Witzenbacher, M. (1996). Pesticide monitoring of drinking water
with the help of solid-phase extraction and high-performance liquid chromatography.
Journal of Chromatography A, 737(1), 67–74.
16. Di Corcia, A., & Marchettl, M. (1992). Method development for monitoring pesticides in
environmental waters: Liquid-solid extraction followed by liquid chromatography.
Environmental Science and Technology, 26, 66–74.
17. Shum, S. C. K., Pang, H. M., & Houk, R. S. (1992). Speciation of mercury and lead
compounds by microbore column liquid chromatography-inductively coupled plasma mass
spectrometry with direct injection nebulization. Analytical Chemistry, 64, 2444–2450.
18. Mauter, M. S., & Elimelech, M. (2008). Environmental applications of carbon-based
nanomaterials. Environmental Science and Technology, 42, 5843–5859.
19. Ullah, N., Mansha, M., Khan, I., & Qurashi, A. (2018). Nanomaterial-based optical chemical
sensors for the detection of heavy metals in water: Recent advances and challenges. TrAC—
Trends in Analytical Chemistry, 100, 155–166.
20. Wang, J., & Lin, Y. (2008). Functionalized carbon nanotubes and nanofibers for biosensing
applications. TrAC Trends in Analytical Chemistry, 27, 619–626.
21. Matlock-Colangelo, L., & Baeumner, A. J. (2012). Recent progress in the design of
nanofiber-based biosensing devices. Lab on a Chip, 12, 2612.
22. Zhang, M., Zhao, X., Zhang, G., Wei, G., & Su, Z. (2017). Electrospinning design of
functional nanostructures for biosensor applications. Journal of Materials Chemistry B, 5,
1699–1711.
23. Teo, W. E., & Ramakrishna, S. (2006). A review on electrospinning design and nanofibre
assemblies. Nanotechnology, 17, R89–R106.
24. Li, D., & Xia, Y. (2004). Electrospinning of nanofibers: Reinventing the wheel? Advanced
Materials, 16, 1151–1170.
25. Srivastava, A. K., Mondal, K., Mukhopadhyay, K., Prasad, N. E., & Sharma, A. (2016).
Facile reduction of para-nitrophenols: Catalytic efficiency of silver nanoferns in batch and
continuous flow reactors. RSC Adv., 6, 113981–113990.
26. Li, Y., Abedalwafa, M. A., Tang, L., Li, D. & Wang, L. Electrospun nanofibers for sensors.
Electrospinning: Nanofabrication and Applications, 571–601 (William Andrew Publishing,
2019). https://doi.org/10.1016/b978-0-323-51270-1.00018-2
27. Schiffman, J. D., & Schauer, C. L. (2008). A review: Electrospinning of biopolymer
nanofibers and their applications. Polymer Reviews, 48, 317–352.
28. Stojanovska, E., et al. (2016). A review on non-electro nanofibre spinning techniques. RSC
Advances, 6, 83783–83801.
29. Esfahani, H., Jose, R., & Ramakrishna, S. (2017). Electrospun ceramic nanofiber mats today:
Synthesis, properties, and applications. Materials, 10, 1238.
30. Nayak, R., Padhye, R., Kyratzis, I. L., Truong, Y. B., & Arnold, L. (2012). Recent advances
in nanofibre fabrication techniques. Textile Research Journal, 82, 129–147.
31. Richards, A., van den Maagdenberg, A. M., Jen, J. C., Kavanagh, D., Bertram, P., Spitzer,
D., & McLellan, M. (2007). C-terminal truncations in human 3′-5′ DNA exonuclease
Nanofiber Based Sensors for Water Pollution Monitoring
315
