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Reduced graphene oxide-Nickel sulfide (NiS) composited on mechanical pencil lead as a versatile and cost-effective sensor for electrochemical measurements of bisphenol A and mercury (II)

Authors
Vu, Tung DuyDuy, Pham KhacBui, Hoa ThiHan, Sung-HwanChung, Hoeil
Issue Date
Feb-2019
Publisher
ELSEVIER SCIENCE SA
Keywords
Nickel sulfide; Mechanical pencil lead; Reduced graphene oxide; Bisphenol A; Receipt paper; Mercury (II)
Citation
SENSORS AND ACTUATORS B-CHEMICAL, v.281, pp.320 - 325
Indexed
SCIE
SCOPUS
Journal Title
SENSORS AND ACTUATORS B-CHEMICAL
Volume
281
Start Page
320
End Page
325
URI
https://scholarworks.bwise.kr/hanyang/handle/2021.sw.hanyang/148399
DOI
10.1016/j.snb.2018.08.139
ISSN
0925-4005
Abstract
NiS is a highly promising transition metal sulfide versatile for a sensor material owing to its superior conductivity and stability, and herein we report its first incorporation into an electrochemical sensor. Because exposure to electrolyte under electrochemical impact can easily deform NiS, thereby decreasing its electroactivity and measurement reproducibility, a strategy for optimally integrating NiS into sensors is critically necessary. For this purpose, NiS was initially firmly affixed to a mechanical pencil lead (MPL) by means of hydrothermal deposition (with the result designated as MPL-NiS). MPL, a commercially available carbon-based material with consistent quality, was adopted to make the sensor cost-effective and easily prepared. Then, to prevent direct exposure of NiS to samples during electrochemical measurement and to make the sensor surface more reactive for wide variety of analytes, reduced graphene oxide (rGO) was electrodeposited on the NiS surface to construct a final structure of MPL-NiS/rGO. In summary, NiS, a p-type semiconductor with positive charge, was effectively composited and sandwiched with negatively charged rGO and MPL by means of mutual electrostatic interaction. When the developed MPL-NiS/rGO sensor was used to separately measure bisphenol A (BPA) and mercury-Hg2+, the sensitivity and sensor-to-sensor reproducibility were comparable with or superior to those of previously reported sensors.
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