三维过渡金属材料在非酶葡萄糖电化学传感器中的研究进展

陈代东1,2, 田亮亮2*, 徐茂文1

化工新型材料 ›› 2022, Vol. 50 ›› Issue (1) : 234 -237.

PDF
化工新型材料 ›› 2022, Vol. 50 ›› Issue (1) : 234-237. DOI: 10.19817/j.cnki.issn1006-3536.2022.01.047
开发与应用

三维过渡金属材料在非酶葡萄糖电化学传感器中的研究进展

    陈代东1,2, 田亮亮2*, 徐茂文1
作者信息 +

Research progress on 3D transition metal materials applied in non-enzymatic glucose sensor

  • Chen Daidong1,2, Tian Liangliang2, Xu Maowen1
Author information +
文章历史 +
PDF

摘要

非酶电化学传感器因其灵敏度高、稳定性强、价格低廉等优点受到广泛关注,将非酶电化学传感器应用于葡萄糖浓度的检测对于医疗健康具有重要的意义。三维过渡金属电极材料具有独特的网络结构,能够提供足够的催化活性位点和扩散通道,确保了电极的灵敏度和稳定性。综述了常见三维过渡金属电极的类型、特点及其在非酶葡萄糖电化学传感器中的应用。最后,对非酶葡萄糖电化学三维过渡金属材料面临的挑战和未来的发展方向进行了展望。

Abstract

The application of non-enzymatic electrochemical sensors to the detection of glucose concentration is of great importance to medical health due to their high sensitivity,stability and low price.Three-dimensional (3D) transition metal electrode materials have a unique network structure that can provide sufficient catalytically active sites and diffusion channels to ensure the sensitivity and stability of the electrode.The overview of common types of 3D transition metal electrodes,their characteristics,and their applications in non-enzymatic glucose electrochemical sensors was provided.Finally,the challenges and future directions of non-enzymatic glucose electrochemical 3D transition metal materials were envisioned.

关键词

非酶传感器 / 葡萄糖 / 三维材料 / 过渡金属 / 自支撑材料

Key words

non-enzymatic sensor / glucose / three-dimensional material / transition metal / self-supporting material

引用本文

引用格式 ▾
三维过渡金属材料在非酶葡萄糖电化学传感器中的研究进展[J]. 化工新型材料, 2022, 50(1): 234-237 DOI:10.19817/j.cnki.issn1006-3536.2022.01.047

登录浏览全文

4963

注册一个新账户 忘记密码

参考文献

[1] Clark B L,Lyons C R.Electrode systems for continuous monitoring in cardiovascular surgery[J].Annals of the New York Academy of Sciences,1962,102(1):29-35.
[2] Wang J.Electrochemical glucose biosensors[J].Chemical Reviews,2008,108(2):814-825.
[3] Saltiel A R,Kahn C R.Insulin signalling and the regulation of glucose and lipid metabolism[J].Nature,2001,414(6865):799-806.
[4] Gerstein H C,Shah R.Cardiovascular outcomes trials of glucose-lowering drugs or strategies in type 2 diabetes[J].Endocrinology and Metabolism Clinics of North America,2017,47(1):97-116.
[5] Shahriar M,Mohsen J,Abbas A.Removal of heavy metals from aqueous solutions using Fe3O4,ZnO,and CuO nanoparticles[J].Journal of Nanoparticle Research,2012,14:846.
[6] He Y F,Zhuang X D,Lei C J,et al.Porous carbon nanosheets:synthetic strategies and electrochemical energy related applications[J].Nano Today,2019,24:103-119.
[7] Wang M,Ma Z,Li J,et al.Well-dispersed palladium nanoparticles on nickel-phosphorus nanosheets as efficient three-dimensional platform for superior catalytic glucose electro-oxidation and non-enzymatic sensing[J].Journal of Colloid and Interface Science,2017,511(1):355-364.
[8] Arul P,John S A.Organic solvent free in situ growth of flower like Co-ZIF microstructures on nickel foam for glucose sensing and supercapacitor applications[J].Electrochimica Acta,2019,306(20):254-263.
[9] Duan X X,Liu K,Xu Y,et al.Nonenzymatic electrochemical glucose biosensor constructed by NiCo2O4@Ppy nanowires on nickel foam substrate[J].Sensors and Actuators B:Chemical,2019,292(1):121-128.
[10] Lu W,Qin X,Asiri A M,et al.Ni foam:a novel three-dimensional porous sensing platform for sensitive and selective nonenzymatic glucose detection[J].The Analyst,2012,138(2):417-420.
[11] Xiao Q,Wang X X,Huang S.Facile synthesis of Ni(OH)2 nanowires on nickel foam via one step lowtemperature hydrothermal route for non-enzymatic glucose sensor[J].Materials Letters,2017,198:19-22.
[12] Xia K D,Yang C,Chen Y L,et al.In situ fabrication of Ni(OH)2 flakes on Ni foam through electrochemical corrosion as high sensitive and stable binder-free electrode for glucose sensing[J].Sensors and Actuators B:Chemical,2017,240:979-987.
[13] Xue B,Li K Z,Gu S Y,et al.Ni foam-supported ZnO nanowires and Co3O4/NiCo2O4 double-shelled nanocages for efficient hydrogen peroxide detection[J].Sensors and Actuators B:Chemical,2018,262:828-836.
[14] Hussain S,Akbar K,Vikraman D,et al.Highly sensitive enzymeless glucose sensor based on 3D graphene-Cu hybrid electrodes[J].New Journal of Chemistry,2015,39:7481-7487.
[15] Zhao C J,Xiao X W,Zhang J.Facile synthesis of layered CuS/RGO/CuS nanocomposite on Cu foam for ultrasensitive nonenzymatic detection of glucose[J].Journal of Electroanalytical Chemistry,2017,785(15):172-179.
[16] Lu W D,SunY J,Dai H C,et al.Fabrication of cuprous sulfide nanorods supported on copper foam for nonenzymatic amperometric determination of glucose and hydrogen peroxide[J].RSC Advances,2016,6:90732-90738.
[17] Liu X,Yang W,Chen L,et al.Three-dimensional copper foam supported CuO nanowire arrays:an efficient non-enzymatic glucose sensor[J].Electrochimica Acta,2017,235(1):519-526.
[18] Jianan X,Fenghua L,Dandan W,et al.Co3O4 nanostructures on flexible carbon cloth for crystal plane effect of nonenzymatic electrocatalysis for glucose[J].Biosensors and Bioelectronics,2019,123(1):25-29.
[19] Huang M,Luo X,He D,et al.Preparation of hierarchical Co(OH)2 nanotube arrays grown on carbon cloth and its use in non-enzymatic glucose sensing[J].Analytical Methods,2017,9:5903-5909.
[20] Chen T,Li X,Qiu C,et al.Electrochemical sensing of glucose by carbon cloth-supported Co3O4/PbO2 core-shell nanorod arrays[J].Biosensors and Bioelectronics,2014,53:200-206.
[21] Cheng S Y,DelaCruz S,Chen C,et al.Hierarchical Co3O4/CuO nanorod array supported on carbon cloth for highly sensitive non-enzymatic glucose biosensing[J].Sensors and Actuators B:Chemical,2019,298(1):126860.
[22] Wang X,Zheng Y,Yuan J,et al.Three-dimensional NiCo layered double hydroxide nanosheets array on carbon cloth,facile preparation and its application in highly sensitive enzymeless glucose detection[J].Electrochimica Acta,2017,224(10):628-635.
[23] Zhang H Z,Yu Y W,Shen X D et al.A Cu2O/Cu/carbon cloth as a binder-free electrode for non-enzymatic glucose sensors with high performance[J].New Journal of Chemistry,2020,44:1993-2000.
[24] Liu Y,Yu D S,Zeng C,et al.Biocompatible graphene oxide-based glucose biosensors[J].Langmuir,2010,26(9):6158-6160.
[25] Dong X C,Xu H,Wang X W,et al.3D graphene-cobalt oxide electrode for high-performance supercapacitor and enzymeless glucose detection[J].ACS Nano,2012,6(4):3206-3213.
[26] Zhan B B,Liu C B,Chen H P,et al.Free-standing electrochemical electrode based on Ni(OH)2/3D graphene foam for nonenzymatic glucose detection[J].Nanoscale,2014,6:7424-7429.
[27] Zhai X C,Chen P,Cao W Q,et al.Preparation of three-dimensional graphene free-standing electrochemical sensor and its potential application in glucose determination[J].Journal of the Iranian Chemical Society,2020.
[28] Tian L L,He G G,Cai Y H,et al.Co3O4 based nonenzymatic glucose sensor with high sensitivity and reliable stability derived from hollow hierarchical architecture[J].Nanotechnology,2018,29(7):075502.
[29] Elakkiya R,Maduraiveeran G.Three-dimensional nickel-cobalt oxide nanomaterials as enzyme-mimics electrocatalyst for the glucose and lactic acid oxidation reaction[J].New Journal of Chemistry,2019,43(1):14756-14762.
[30] Chen K,Zhang R,Li Y H,et al.Synthesis of hollow nanospherical cuprous oxide supported by nitrogen-doped reduced graphene oxide and its application to enzyme-free glucose sensing[J].Chemistry Select,2019,4(23):7027-7034.
[31] Xue B,Li K,Feng L,et al.Graphene wrapped porous Co3O4/NiCo2O4,double-shelled nanocages with enhanced electrocatalytic performance for glucose sensor[J].Electrochimica Acta,2017,239(10):36-44.
[32] Chen D D,Tian L L,Yin C Y et al.Decoration of CuS nanocages with internal and external Co(OH)2 nanosheets to jointly promote electrocatalytic activity for the highly sensitive detection of glucose[J].Sensors and Actuators B:Chemical,2020,323(15):128692.
AI Summary AI Mindmap
PDF

476

访问

0

被引

导航
相关文章

AI思维导图

/