52. Ekino, S., Susa, M., Ninomiya, T., Imamura, K., & Kitamura, T. (2007). Minamata disease
revisited: An update on the acute and chronic manifestations of methyl mercury poisoning.
Journal of the Neurological Sciences, 262, 131–144.
53. Kallithrakas-Kontos, N., & Foteinis, S. (2015). Recent advances in the analysis of mercury
in water review. Current Analytical Chemistry, 12, 22–36.
54. Chen, G. Y. (2014). A review of microfiber and nanofiber based optical sensors. The Open
Optics Journal, 7, 32–57.
55. Chen, G., Guo, Z., Zeng, G., & Tang, L. (2015). Fluorescent and colorimetric sensors for
environmental mercury detection. Analyst, 140, 5400–5443.
56. Saleem, M., Rafiq, M., & Hanif, M. (2017). Organic material based fluorescent sensor for
Hg 2+ : A brief review on recent development. Journal of Fluorescence, 27, 31–58.
57. Senthamizhan, A., Celebioglu, A., & Uyar, T. (2015). Real-time selective visual monitoring
of Hg2 + detection at ppt level: An approach to lighting electrospun nanofibers using gold
nanoclusters. Scientific Reports, 5, 10403.
58. Yu, X., Liu, W., Deng, X., Yan, S., & Su, Z. (2018). Gold nanocluster embedded bovine
serum albumin nanofibers-graphene hybrid membranes for the efficient detection and
separation of mercury ion. Chemical Engineering Journal, 335, 176–184.
59. Ma, L., et al. (2017). Fluorescent nanofibrous membrane (FNFM) for the detection of
mercuric ion (II) with high sensitivity and selectivity. Sensors and Actuators B: Chemical,
238, 120–127.
60. Tang, L., et al. (2017). A reusable electrochemical biosensor for highly sensitive detection of
mercury ions with an anionic intercalator supported on ordered mesoporous carbon/
self-doped polyaniline nanofibers platform. Biochemical Engineering Journal, 117, 7–14.
61. Ghosh, A., et al. (2014). Approaching sensitivity of tens of ions using atomically precise
cluster-nanofiber composites. Analytical Chemistry, 86, 10996–11001.
62. Kacmaz, S., et al. (2012). Sub-nanomolar sensing of ionic mercury with polymeric
electrospun nanofibers. Materials Chemistry and Physics, 133, 547–552.
63. Parsaee, Z. (2018). Electrospun nanofibers decorated with bio-sonochemically synthesized
gold nanoparticles as an ultrasensitive probe in amalgam-based mercury (II) detection
system. Ultrasonics Sonochemistry, 44, 24–35.
64. Sánchez-Calvo, A., Fernández-Abedul, M. T., Blanco-López, M. C., & Costa-García, A.
(2019). Paper-based electrochemical transducer modified with nanomaterials for mercury
determination in environmental waters. Sensors Actuators, B Chem., 290, 87–92.
65. Nordberg, G. F., et al. (2018). Risk assessment of effects of cadmium on human health
(IUPAC Technical Report). Pure and Applied Chemistry, 90, 755–808.
66. Johri, N., Jacquillet, G., & Unwin, R. (2010). Heavy metal poisoning: The effects of
cadmium on the kidney. BioMetals, 23, 783–792.
67. Yin, J., et al. (2011). SERS-active nanoparticles for sensitive and selective detection of
cadmium ion (Cd 2+). Chemistry of Materials, 23, 4756–4764.
68. Promphet, N., Rattanarat, P., Rangkupan, R., Chailapakul, O., & Rodthongkum, N. (2015).
An electrochemical sensor based on graphene/polyaniline/polystyrene nanoporous fibers
modified electrode for simultaneous determination of lead and cadmium. Sensors
Actuators B Chem., 207, 526–534.
69. Migliorini, F. L., et al. (2017). Voltammetric cadmium(II) sensor based on a fluorine doped
tin oxide electrode modified with polyamide 6/chitosan electrospun nanofibers and gold
nanoparticles. Microchimica Acta, 184, 1077–1084.
70. Huang, H., Zhu, W., Gao, X., Liu, X., & Ma, H. (2016). Synthesis of a novel electrode
material containing phytic acid-polyaniline nanofibers for simultaneous determination of
cadmium and lead ions. Analytica Chimica Acta, 947, 32–41.
71. Zhang, B., et al. (2016). Facile and green fabrication of size-controlled AuNPs/CNFs hybrids
for the highly sensitive simultaneous detection of heavy metal ions. Electrochimica Acta,
196, 422–430.
72. Mishra, R. K., et al. (2017). Electrospinning of graphene-oxide onto screen printed
electrodes for heavy metal biosensor. Sensors and Actuators B: Chemical, 247, 366–373.
Nanofiber Based Sensors for Water Pollution Monitoring
317
revisited: An update on the acute and chronic manifestations of methyl mercury poisoning.
Journal of the Neurological Sciences, 262, 131–144.
53. Kallithrakas-Kontos, N., & Foteinis, S. (2015). Recent advances in the analysis of mercury
in water review. Current Analytical Chemistry, 12, 22–36.
54. Chen, G. Y. (2014). A review of microfiber and nanofiber based optical sensors. The Open
Optics Journal, 7, 32–57.
55. Chen, G., Guo, Z., Zeng, G., & Tang, L. (2015). Fluorescent and colorimetric sensors for
environmental mercury detection. Analyst, 140, 5400–5443.
56. Saleem, M., Rafiq, M., & Hanif, M. (2017). Organic material based fluorescent sensor for
Hg 2+ : A brief review on recent development. Journal of Fluorescence, 27, 31–58.
57. Senthamizhan, A., Celebioglu, A., & Uyar, T. (2015). Real-time selective visual monitoring
of Hg2 + detection at ppt level: An approach to lighting electrospun nanofibers using gold
nanoclusters. Scientific Reports, 5, 10403.
58. Yu, X., Liu, W., Deng, X., Yan, S., & Su, Z. (2018). Gold nanocluster embedded bovine
serum albumin nanofibers-graphene hybrid membranes for the efficient detection and
separation of mercury ion. Chemical Engineering Journal, 335, 176–184.
59. Ma, L., et al. (2017). Fluorescent nanofibrous membrane (FNFM) for the detection of
mercuric ion (II) with high sensitivity and selectivity. Sensors and Actuators B: Chemical,
238, 120–127.
60. Tang, L., et al. (2017). A reusable electrochemical biosensor for highly sensitive detection of
mercury ions with an anionic intercalator supported on ordered mesoporous carbon/
self-doped polyaniline nanofibers platform. Biochemical Engineering Journal, 117, 7–14.
61. Ghosh, A., et al. (2014). Approaching sensitivity of tens of ions using atomically precise
cluster-nanofiber composites. Analytical Chemistry, 86, 10996–11001.
62. Kacmaz, S., et al. (2012). Sub-nanomolar sensing of ionic mercury with polymeric
electrospun nanofibers. Materials Chemistry and Physics, 133, 547–552.
63. Parsaee, Z. (2018). Electrospun nanofibers decorated with bio-sonochemically synthesized
gold nanoparticles as an ultrasensitive probe in amalgam-based mercury (II) detection
system. Ultrasonics Sonochemistry, 44, 24–35.
64. Sánchez-Calvo, A., Fernández-Abedul, M. T., Blanco-López, M. C., & Costa-García, A.
(2019). Paper-based electrochemical transducer modified with nanomaterials for mercury
determination in environmental waters. Sensors Actuators, B Chem., 290, 87–92.
65. Nordberg, G. F., et al. (2018). Risk assessment of effects of cadmium on human health
(IUPAC Technical Report). Pure and Applied Chemistry, 90, 755–808.
66. Johri, N., Jacquillet, G., & Unwin, R. (2010). Heavy metal poisoning: The effects of
cadmium on the kidney. BioMetals, 23, 783–792.
67. Yin, J., et al. (2011). SERS-active nanoparticles for sensitive and selective detection of
cadmium ion (Cd 2+). Chemistry of Materials, 23, 4756–4764.
68. Promphet, N., Rattanarat, P., Rangkupan, R., Chailapakul, O., & Rodthongkum, N. (2015).
An electrochemical sensor based on graphene/polyaniline/polystyrene nanoporous fibers
modified electrode for simultaneous determination of lead and cadmium. Sensors
Actuators B Chem., 207, 526–534.
69. Migliorini, F. L., et al. (2017). Voltammetric cadmium(II) sensor based on a fluorine doped
tin oxide electrode modified with polyamide 6/chitosan electrospun nanofibers and gold
nanoparticles. Microchimica Acta, 184, 1077–1084.
70. Huang, H., Zhu, W., Gao, X., Liu, X., & Ma, H. (2016). Synthesis of a novel electrode
material containing phytic acid-polyaniline nanofibers for simultaneous determination of
cadmium and lead ions. Analytica Chimica Acta, 947, 32–41.
71. Zhang, B., et al. (2016). Facile and green fabrication of size-controlled AuNPs/CNFs hybrids
for the highly sensitive simultaneous detection of heavy metal ions. Electrochimica Acta,
196, 422–430.
72. Mishra, R. K., et al. (2017). Electrospinning of graphene-oxide onto screen printed
electrodes for heavy metal biosensor. Sensors and Actuators B: Chemical, 247, 366–373.
Nanofiber Based Sensors for Water Pollution Monitoring
317
