International Journal Devoted to Fundamental and Practical Aspects of Electroanalysis, 10
(14), 942–947.
45. Ordeig, O., Mas, R., Gonzalo, J., Del Campo, F. J., Muñoz, F. J., & de Haro, C. (2005).
Continuous detection of hypochlorous acid/hypochlorite for water quality monitoring and
control. Electroanalysis: An International Journal Devoted to Fundamental and Practical
Aspects of Electroanalysis, 17(18), 1641–1648.
46. Sun, W., Sun, G., Qin, B., & Xin, Q. (2007). A fuel-cell-type sensor for detection of
formaldehyde in aqueous solution. Sensor Actuators B-Chem, 128, 193–198.
47. Mehta, A., Shekhar, H., Hyun, S. H., Hong, S., & Cho, H. J. (2006). A micromachined
electrochemical sensor for free chlorine monitoring in drinking water. Water Science and
Technology, 53, 403–410.
48. Lee, H. J., Beattie, P. D., Seddon, B. J., Osborne, M. D., & Girault, H. H. (1997).
Amperometric ion sensors based on laser-patterned composite polymer membranes. Journal
of Electroanalytical Chemistry, 440, 1–2.
49. Huang, J. D., Zhang, X. M., Liu, S., Lin, Q., He, X. R., Xing, X. R., et al. (2011).
Electrochemical sensor for bisphenol A detection based on molecularly imprinted polymers
and gold nanoparticles. Journal of Appled Electrochemistry, 41, 1323–1328.
50. Chen, T. S., & Huang, K. L. (2012). Electrochemical detection and degradation of
acetaminophen in aqueous solutions. International Journal of Electrochemical Science, 7,
6877–6892.
51. Quintino de Oliveira, M. C., Tanaka, A. A., de Vasconce los Lanza, M. R., & Del
PilarTaboada Sotomayor, M. (2011). Studies of the electrochemical degradation of
acetaminophen using a real‐time biomimetic sensor. Electroanalysis, 23(11), 2616–2621.
52. de Mattos, I. L., Gorton, L., & Ruzgas, T. (2003). Sensor and biosensor based on Prussian
Blue modified gold and platinum screen printed electrodes. Biosensors & Bioelectronics, 18,
193–200.
53. Berchmans, S., Karthikeyan, R., Gupta, S., Poinern, G. E. J., Issa, T. B., & Singh, P. (2011).
Glassy carbon electrode modified with hybrid films containing inorganic molybdate anions
trapped in organic matrices of chitosan and ionic liquid for the amperometric sensing of
phosphate at neutral pH. Sensor ActuatB-Chem, 160, 1224–1231.
54. Afzali, D., Karimi-Maleh, H., & Khalilzadeh, M. A. (2011). Sensitive and selective
determination of phenylhydrazine in the presence of hydrazine at a ferrocene-modified
carbon nanotube paste electrode. Environmental Chemistry Letters, 9, 375–381.
55. Grieshaber, D., MacKenzie, R., Vörös, J., & Reimhult, E. (2008). Electrochemical
Biosensors-Sensor Principles and Architectures. Sensors, 8, 1400–1458.
56. Huang, J.-F., & Lin, B.-L. (2009). Application of a nanoporous gold electrode for the
sensitive detection of copper via mercury-free anodic stripping voltammetry. Analyst, 134,
2306–2313.
57. Chang, B.-Y., & Park, S.-M. (2010). Electrochemical impedance spectroscopy. Ann. Rev.
Anal. Chem., 3, 207–229.
58. Huo, D., Li, Q., Zhang, Y., Hou, C., & Lei, Y. (2014). A highly efficient organophosphorus
pesticides sensor based on CuO nanowires–SWCNTs hybrid nanocomposite. Sensors and
Actuators B Chemical, 199, 410–417.
59. Torsi, L., Magliulo, M., Manoli, K., & Palazzo, G. (2013). Organic field-effect transistor
sensors: A tutorial review. Chem Soc Rev 42, 8612–8628.
60. Bain, C. D., Troughton, E. B., Tao, Y. T., Evalli, J., Whitesides, G. M., & Nuzzo, R. G.
(1989). Formation of monolayer films by the spontaneous assembly of organic thiols from
solution onto gold. Journal of the American Chemical Society, 111, 321–335.
61. Muller, A., Brinz, T., & Simon, U. (2008). Preparation and measurement of combinatorial
screen printed libraries for the electrochemical analysis of liquids. Journal of Combinatorial
Chemistry, 11, 138–142.
62. Kampouris, D. K., Kadara, R. O., Jenkinson, N., & Banks, C. E. (2009). Screen printed
electrochemical platforms for pH sensing. Analytical Methods, 1, 25–28.
Materials in Electrochemical Detection of Water Pollutants
181
(14), 942–947.
45. Ordeig, O., Mas, R., Gonzalo, J., Del Campo, F. J., Muñoz, F. J., & de Haro, C. (2005).
Continuous detection of hypochlorous acid/hypochlorite for water quality monitoring and
control. Electroanalysis: An International Journal Devoted to Fundamental and Practical
Aspects of Electroanalysis, 17(18), 1641–1648.
46. Sun, W., Sun, G., Qin, B., & Xin, Q. (2007). A fuel-cell-type sensor for detection of
formaldehyde in aqueous solution. Sensor Actuators B-Chem, 128, 193–198.
47. Mehta, A., Shekhar, H., Hyun, S. H., Hong, S., & Cho, H. J. (2006). A micromachined
electrochemical sensor for free chlorine monitoring in drinking water. Water Science and
Technology, 53, 403–410.
48. Lee, H. J., Beattie, P. D., Seddon, B. J., Osborne, M. D., & Girault, H. H. (1997).
Amperometric ion sensors based on laser-patterned composite polymer membranes. Journal
of Electroanalytical Chemistry, 440, 1–2.
49. Huang, J. D., Zhang, X. M., Liu, S., Lin, Q., He, X. R., Xing, X. R., et al. (2011).
Electrochemical sensor for bisphenol A detection based on molecularly imprinted polymers
and gold nanoparticles. Journal of Appled Electrochemistry, 41, 1323–1328.
50. Chen, T. S., & Huang, K. L. (2012). Electrochemical detection and degradation of
acetaminophen in aqueous solutions. International Journal of Electrochemical Science, 7,
6877–6892.
51. Quintino de Oliveira, M. C., Tanaka, A. A., de Vasconce los Lanza, M. R., & Del
PilarTaboada Sotomayor, M. (2011). Studies of the electrochemical degradation of
acetaminophen using a real‐time biomimetic sensor. Electroanalysis, 23(11), 2616–2621.
52. de Mattos, I. L., Gorton, L., & Ruzgas, T. (2003). Sensor and biosensor based on Prussian
Blue modified gold and platinum screen printed electrodes. Biosensors & Bioelectronics, 18,
193–200.
53. Berchmans, S., Karthikeyan, R., Gupta, S., Poinern, G. E. J., Issa, T. B., & Singh, P. (2011).
Glassy carbon electrode modified with hybrid films containing inorganic molybdate anions
trapped in organic matrices of chitosan and ionic liquid for the amperometric sensing of
phosphate at neutral pH. Sensor ActuatB-Chem, 160, 1224–1231.
54. Afzali, D., Karimi-Maleh, H., & Khalilzadeh, M. A. (2011). Sensitive and selective
determination of phenylhydrazine in the presence of hydrazine at a ferrocene-modified
carbon nanotube paste electrode. Environmental Chemistry Letters, 9, 375–381.
55. Grieshaber, D., MacKenzie, R., Vörös, J., & Reimhult, E. (2008). Electrochemical
Biosensors-Sensor Principles and Architectures. Sensors, 8, 1400–1458.
56. Huang, J.-F., & Lin, B.-L. (2009). Application of a nanoporous gold electrode for the
sensitive detection of copper via mercury-free anodic stripping voltammetry. Analyst, 134,
2306–2313.
57. Chang, B.-Y., & Park, S.-M. (2010). Electrochemical impedance spectroscopy. Ann. Rev.
Anal. Chem., 3, 207–229.
58. Huo, D., Li, Q., Zhang, Y., Hou, C., & Lei, Y. (2014). A highly efficient organophosphorus
pesticides sensor based on CuO nanowires–SWCNTs hybrid nanocomposite. Sensors and
Actuators B Chemical, 199, 410–417.
59. Torsi, L., Magliulo, M., Manoli, K., & Palazzo, G. (2013). Organic field-effect transistor
sensors: A tutorial review. Chem Soc Rev 42, 8612–8628.
60. Bain, C. D., Troughton, E. B., Tao, Y. T., Evalli, J., Whitesides, G. M., & Nuzzo, R. G.
(1989). Formation of monolayer films by the spontaneous assembly of organic thiols from
solution onto gold. Journal of the American Chemical Society, 111, 321–335.
61. Muller, A., Brinz, T., & Simon, U. (2008). Preparation and measurement of combinatorial
screen printed libraries for the electrochemical analysis of liquids. Journal of Combinatorial
Chemistry, 11, 138–142.
62. Kampouris, D. K., Kadara, R. O., Jenkinson, N., & Banks, C. E. (2009). Screen printed
electrochemical platforms for pH sensing. Analytical Methods, 1, 25–28.
Materials in Electrochemical Detection of Water Pollutants
181
