Progress in Ni-based Electrochemical Sensors for Glucose Detection

被引:0
|
作者
Han C. [1 ]
Yue Z. [1 ]
Yu S. [1 ]
Wang X. [1 ]
Zhang S. [1 ]
机构
[1] College of Food Engineering, Harbin University of Commerce, Harbin
关键词
composite material; electrochemical sensor; glucose; transition metal Ni;
D O I
10.13386/j.issn1002-0306.2022100194
中图分类号
学科分类号
摘要
The transition metal Ni is widely used because of its low price, fast electron transfer rate and high catalytic activity. The electrochemical performance of the sensor will be improved by combining metallic Ni with other materials through different preparation methods. This combination can be applied to glucose detection in the food industry, health care and other fields. This paper reviews the methods of constructing electrodes from metal Ni-based composites and the effects of metal Ni compounded with carbon materials, monometallics, metal oxides, and metal hydroxides on sensor performance for the construction of high-performance electrochemical sensors and the practical application of glucose detection. © 2023 Authors. All rights reserved.
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页码:482 / 489
页数:7
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共 67 条
  • [21] LI Y, XIAO Q, HUANG S., Highly active nickel-doped FeS<sub>2</sub> nanoparticles trigger non-enzymatic glucose detection[J], Materials Chemistry and Physics, 193, (2017)
  • [22] PUJARI S S, KADAM S A, MA Y R, Et al., Highly sensitive hydrothermally prepared nickel phosphate electrocatalyst as non-enzymatic glucose sensing electrode[J], Journal of Porous Materials, 28, 2, pp. 369-381, (2021)
  • [23] SALARIZADEH N, HABIBI-REAZEI M, ZARGAR S J., NiO –MoO<sub>3</sub> nanocomposite: A sensitive non-enzymatic sensor for glucose and urea monitoring[J], Materials Chemistry and Physics, 281, (2022)
  • [24] SAFADI B N, GONCALVES J M, CASTALDELLI E, Et al., Lamellar FeOcPc-Ni/GO Composite-based enzymeless glucose sensor[J], ChemElectroChem, 7, 12, pp. 2553-2563, (2020)
  • [25] BAZAZI S, ARSALANI N, KHATAEE A, Et al., Comparison of ball milling-hydrothermal and hydrothermal methods for synthesis of ZnO nanostructures and evaluation of their photocatalytic performance[J], Journal of Industrial and Engineering Chemistry, 62, pp. 265-272, (2018)
  • [26] CI S, HUANG T, WEN Z, Et al., Nickel oxide hollow microsphere for non-enzyme glucose detection[J], Biosensors and Bio-electronics, 54, (2014)
  • [27] GAO F, YANG Y, QIU W, Et al., Ni<sub>3</sub>C/Ni Nanochains for electrochemical sensing of glucose[J], ACS Applied Nano Materials, 4, 8, pp. 8520-8529, (2021)
  • [28] LI P, SHU J, SHAO L, Et al., Comparison of morphology and electrochemical behavior between PbSbO<sub>2</sub>Cl and PbCl<sub>2</sub>/Sb<sub>4</sub>O<sub>5</sub>Cl<sub>2</sub> [J], Journal of Electroanalytical Chemistry, 731, (2014)
  • [29] RAMAN I, CHANDRASEKARAN N I, PUGAZHENDHI A, Et al., Investigation of photoelectrochemical activity of cobalt tin sulfide synthesized via microwave-assisted and solvothermal process[J], Journal of Alloys and Compounds, 778, pp. 496-506, (2019)
  • [30] YAO K, DAI B, TAN X, Et al., Fabrication of Au/Ni/boron-doped diamond electrodes via hydrogen plasma etching graphite and amorphous boron for efficient non-enzymatic sensing of glucose[J], Journal of Electroanalytical Chemistry, 871, (2020)