Synthesis of nickel nanosheet/graphene composites for biosensor applications

被引:25
作者
Guo, Wenlong [1 ]
Li, Hongji [2 ]
Li, Mingji [1 ]
Dai, Wei [3 ]
Shao, Zhou [1 ]
Wu, Xiaoguo [1 ]
Yang, Baohe [1 ]
机构
[1] Tianjin Univ Technol, Sch Elect Informat Engn, Tianjin Key Lab Film Elect & Commun Devices, Tianjin 300384, Peoples R China
[2] Tianjin Univ Technol, Sch Chem & Chem Engn, Tianjin Key Lab Organ Solar Cells & Photochem Con, Tianjin 300384, Peoples R China
[3] Tianjin Univ, Sch Precis Instrument & Optoelect Engn, Tianjin 300072, Peoples R China
关键词
REDUCED GRAPHENE OXIDE; CARBON; ELECTRODE; REDUCTION; GROWTH; ELECTROCHEMISTRY; SPECTROSCOPY; DEPOSITION; GRAPHITE; SENSOR;
D O I
10.1016/j.carbon.2014.08.043
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
The growth of graphene-based nanostructures using chemical vapor deposition (CVD) is a promising approach for novel applications. CVD processes typically use high-quality metal films as catalyst substrates, and require accurate control over the experimental conditions. Here, we report the direct synthesis of Ni nanosheet/graphene composites using a DC arc plasma jet CVD method, using Ni(NO3)(2) as a catalyst precursor. The composites consisted of graphene nanosheets, graphene nanoribbons, and core-shell Ni/graphene nanosheets. In this process, no catalyst substrate was required, and the very high-quality graphene grew at the {111} plane of the Ni. It was demonstrated that the Ni nanosheet/graphene composites could be used as sensitive films for L-alanine sensing. The strong electrocatalytic properties resulted from the synergetic effects of the graphene, which enhanced the electron transfer, and the high catalytic activity of the Ni. (C) 2014 Elsevier Ltd. All rights reserved.
引用
收藏
页码:636 / 645
页数:10
相关论文
共 45 条
[1]   Electrochemistry at CVD Grown Multilayer Graphene Transferred onto Flexible Substrates [J].
Ambrosi, Adriano ;
Pumera, Martin .
JOURNAL OF PHYSICAL CHEMISTRY C, 2013, 117 (05) :2053-2058
[2]   Graphene synthesis on Fe foil using thermal CVD [J].
An, Hyosub ;
Lee, Won-Jun ;
Jung, Jongwan .
CURRENT APPLIED PHYSICS, 2011, 11 (04) :S81-S85
[3]   Microwave self-assembly of 3D graphene-carbon nanotube-nickel nanostructure for high capacity anode material in lithium ion battery [J].
Bae, Seok-Hu ;
Karthikeyan, Kaliyappan ;
Lee, Yun-Sung ;
Oh, Il-Kwon .
CARBON, 2013, 64 :527-536
[4]   Growth of carbon clusters on a Ni(111) surface [J].
Barcaro, G. ;
Zhu, B. ;
Hou, M. ;
Fortunelli, A. .
COMPUTATIONAL MATERIALS SCIENCE, 2012, 63 :303-311
[5]  
Bets KV, 2009, NANO RES, V2, P161, DOI [10.1007/s12274-009-9015-x, 10.1007/S12274-009-9015-X]
[6]   Graphene electrochemistry: Surfactants inherent to graphene inhibit metal analysis [J].
Brownson, Dale A. C. ;
Banks, Craig E. .
ELECTROCHEMISTRY COMMUNICATIONS, 2011, 13 (02) :111-113
[7]   Differentiation between graphene oxide and reduced graphene by electrochemical impedance spectroscopy (EIS) [J].
Casero, E. ;
Parra-Alfambra, A. M. ;
Petit-Dominguez, M. D. ;
Pariente, F. ;
Lorenzo, E. ;
Alonso, C. .
ELECTROCHEMISTRY COMMUNICATIONS, 2012, 20 :63-66
[8]   Amperometric biosensor based on nanoporous nickel/boron-doped diamond film for electroanalysis of L-alanine [J].
Dai, Wei ;
Li, Mingji ;
Li, Hongji ;
Yang, Baohe .
SENSORS AND ACTUATORS B-CHEMICAL, 2014, 201 :31-36
[9]   Size effect of graphene on electrocatalytic activation of oxygen [J].
Deng, Dehui ;
Yu, Liang ;
Pan, Xiulian ;
Wang, Shuang ;
Chen, Xiaoqi ;
Hu, P. ;
Sun, Lixian ;
Bao, Xinhe .
CHEMICAL COMMUNICATIONS, 2011, 47 (36) :10016-10018
[10]   Large-scale graphene production by RF-cCVD method [J].
Dervishi, Enkeleda ;
Li, Zhongrui ;
Watanabe, Fumiya ;
Biswas, Abhijit ;
Xu, Yang ;
Biris, Alexandru R. ;
Saini, Viney ;
Biris, Alexandru S. .
CHEMICAL COMMUNICATIONS, 2009, (27) :4061-4063