38. Fine, T., Leskinen, P., Isobe, T., Shiraishi, H., Morita, M., Marks, R., et al. (2006).
Luminescent yeast cells entrapped in hydrogels for estrogenic endocrine disrupting chemical
biodetection. Biosensors & Bioelectronics, 21(12), 2263–2269.
39. Durst, R. A., & Ba, A. J. (1997). umner, RW Murray, RP Buck and CP Andrieux. Pure
Appl. Chem, 69, 1317–1323.
40. Kutner, W., Wang, J., L’her, M., & Buck, R. P. (1998). Analytical aspects of chemically
modified electrodes: Classification, critical evaluation and recommendations (IUPAC
Recommendations 1998). Pure and Applied Chemistry, 70(6), 1301–1318.
41. Kumar Jena, B., & Retna Raj, C. (2008). Gold nanoelectrode ensembles for the simultaneous
electrochemical detection of ultratrace arsenic, mercury, and copper. Analytical Chemistry,
80(13), 4836–4844.
42. Gong, J., Zhou, T., Song, D., Zhang, L., & Hu, X. (2009). Stripping voltammetric detection
of mercury (II) based on a bimetallic Au − Pt inorganic − organic hybrid nanocomposite
modified glassy carbon electrode. Analytical Chemistry, 82(2), 567–573.
43. Aragay, G., Pons, J., & Merkoçi, A. (2011). Recent trends in macro-, micro-, and
nanomaterial-based tools and strategies for heavy-metal detection. Chemical Reviews, 111
(5), 3433–3458.
44. Injang, U., Noyrod, P., Siangproh, W., Dungchai, W., Motomizu, S., & Chailapakul, O.
(2010). Determination of trace heavy metals in herbs by sequential injection analysis-anodic
stripping voltammetry using screen-printed carbon nanotubes electrodes. Analytica Chimica
Acta, 668(1), 54–60.
45. Zhu, H., Xu, Y., Liu, A., Kong, N., Shan, F., Yang, W., et al. (2015). Graphene
nanodots-encaged porous gold electrode fabricated via ion beam sputtering deposition for
electrochemical analysis of heavy metal ions. Sensors and Actuators B: Chemical, 206, 592–
600.
46. Apetrei, C., Apetrei, I. M., Saja, J. A. D., & Rodriguez-Mendez, M. L. (2011). Carbon paste
electrodes made from different carbonaceous materials: application in the study of
antioxidants. Sensors, 11(2), 1328–1344.
47. Güell, A. G., Meadows, K. E., Unwin, P. R., & Macpherson, J. V. (2010). Trace
voltammetric detection of serotonin at carbon electrodes: comparison of glassy carbon,
boron doped diamond and carbon nanotube network electrodes. Physical Chemistry
Chemical Physics, 12(34), 10108–10114.
48. Li, M., Li, Y.-T., Li, D.-W., & Long, Y.-T. (2012). Recent developments and applications of
screen-printed electrodes in environmental assays—A review. Analytica Chimica Acta, 734,
31–44.
49. Martínez-García, G., Pérez-Julián, E., Agüí, L., Cabré, N., Joven, J., Yáñez-Sedeño, P., et al.
(2017). An electrochemical enzyme biosensor for 3-hydroxybutyrate detection using
screen-printed electrodes modified by reduced graphene oxide and thionine. Biosensors, 7
(4), 50.
50. Raccichini, R., Varzi, A., Passerini, S., & Scrosati, B. (2015). The role of graphene for
electrochemical energy storage. Nature Materials, 14(3), 271.
51. Yakovleva, M., Bhand, S., & Danielsson, B. (2013). The enzyme thermistor—A realistic
biosensor concept. A critical review. Analytica chimica acta, 766, 1–12.
52. Danielsson B, Mosbach K (1988) [16] Enzyme thermistors. In: Methods in enzymology, vol
137. Elsevier, pp 181–197
53. Bataillard, P., Steffgen, E., Haemmerli, S., Manz, A., & Widmer, H. (1993). An integrated
silicon thermopile as biosensor for the thermal monitoring of glucose, urea and penicillin.
Biosensors & Bioelectronics, 8(2), 89–98.
54. Damborský, P., Švitel, J., & Katrlík, J. (2016). Optical biosensors. Essays in biochemistry,
60(1), 91–100.
55. Wang, J., Myung, N. V., Yun, M., & Monbouquette, H. G. (2005). Glucose oxidase
entrapped in polypyrrole on high-surface-area Pt electrodes: a model platform for sensitive
electroenzymatic biosensors. Journal of Electroanalytical Chemistry, 575(1), 139–146.
Materials in Bio-Sensing of Water Pollutants
207
Luminescent yeast cells entrapped in hydrogels for estrogenic endocrine disrupting chemical
biodetection. Biosensors & Bioelectronics, 21(12), 2263–2269.
39. Durst, R. A., & Ba, A. J. (1997). umner, RW Murray, RP Buck and CP Andrieux. Pure
Appl. Chem, 69, 1317–1323.
40. Kutner, W., Wang, J., L’her, M., & Buck, R. P. (1998). Analytical aspects of chemically
modified electrodes: Classification, critical evaluation and recommendations (IUPAC
Recommendations 1998). Pure and Applied Chemistry, 70(6), 1301–1318.
41. Kumar Jena, B., & Retna Raj, C. (2008). Gold nanoelectrode ensembles for the simultaneous
electrochemical detection of ultratrace arsenic, mercury, and copper. Analytical Chemistry,
80(13), 4836–4844.
42. Gong, J., Zhou, T., Song, D., Zhang, L., & Hu, X. (2009). Stripping voltammetric detection
of mercury (II) based on a bimetallic Au − Pt inorganic − organic hybrid nanocomposite
modified glassy carbon electrode. Analytical Chemistry, 82(2), 567–573.
43. Aragay, G., Pons, J., & Merkoçi, A. (2011). Recent trends in macro-, micro-, and
nanomaterial-based tools and strategies for heavy-metal detection. Chemical Reviews, 111
(5), 3433–3458.
44. Injang, U., Noyrod, P., Siangproh, W., Dungchai, W., Motomizu, S., & Chailapakul, O.
(2010). Determination of trace heavy metals in herbs by sequential injection analysis-anodic
stripping voltammetry using screen-printed carbon nanotubes electrodes. Analytica Chimica
Acta, 668(1), 54–60.
45. Zhu, H., Xu, Y., Liu, A., Kong, N., Shan, F., Yang, W., et al. (2015). Graphene
nanodots-encaged porous gold electrode fabricated via ion beam sputtering deposition for
electrochemical analysis of heavy metal ions. Sensors and Actuators B: Chemical, 206, 592–
600.
46. Apetrei, C., Apetrei, I. M., Saja, J. A. D., & Rodriguez-Mendez, M. L. (2011). Carbon paste
electrodes made from different carbonaceous materials: application in the study of
antioxidants. Sensors, 11(2), 1328–1344.
47. Güell, A. G., Meadows, K. E., Unwin, P. R., & Macpherson, J. V. (2010). Trace
voltammetric detection of serotonin at carbon electrodes: comparison of glassy carbon,
boron doped diamond and carbon nanotube network electrodes. Physical Chemistry
Chemical Physics, 12(34), 10108–10114.
48. Li, M., Li, Y.-T., Li, D.-W., & Long, Y.-T. (2012). Recent developments and applications of
screen-printed electrodes in environmental assays—A review. Analytica Chimica Acta, 734,
31–44.
49. Martínez-García, G., Pérez-Julián, E., Agüí, L., Cabré, N., Joven, J., Yáñez-Sedeño, P., et al.
(2017). An electrochemical enzyme biosensor for 3-hydroxybutyrate detection using
screen-printed electrodes modified by reduced graphene oxide and thionine. Biosensors, 7
(4), 50.
50. Raccichini, R., Varzi, A., Passerini, S., & Scrosati, B. (2015). The role of graphene for
electrochemical energy storage. Nature Materials, 14(3), 271.
51. Yakovleva, M., Bhand, S., & Danielsson, B. (2013). The enzyme thermistor—A realistic
biosensor concept. A critical review. Analytica chimica acta, 766, 1–12.
52. Danielsson B, Mosbach K (1988) [16] Enzyme thermistors. In: Methods in enzymology, vol
137. Elsevier, pp 181–197
53. Bataillard, P., Steffgen, E., Haemmerli, S., Manz, A., & Widmer, H. (1993). An integrated
silicon thermopile as biosensor for the thermal monitoring of glucose, urea and penicillin.
Biosensors & Bioelectronics, 8(2), 89–98.
54. Damborský, P., Švitel, J., & Katrlík, J. (2016). Optical biosensors. Essays in biochemistry,
60(1), 91–100.
55. Wang, J., Myung, N. V., Yun, M., & Monbouquette, H. G. (2005). Glucose oxidase
entrapped in polypyrrole on high-surface-area Pt electrodes: a model platform for sensitive
electroenzymatic biosensors. Journal of Electroanalytical Chemistry, 575(1), 139–146.
Materials in Bio-Sensing of Water Pollutants
207
