基于石墨烯修饰电极的电化学生物传感

被引:44
作者
于小雯
盛凯旋
陈骥
李春
石高全
机构
[1] 清华大学化学系
关键词
石墨烯; 氧化石墨烯; 生物分子; 电化学检测; 电化学传感;
D O I
暂无
中图分类号
O613.71 [碳C]; O646 [电化学、电解、磁化学];
学科分类号
070301 ; 081704 ;
摘要
石墨烯是一种具有单原子厚度的二维碳纳米材料,具有大的比表面积、高的导电性和室温电子迁移率,以及优异的机械力学性能.石墨烯还具有电化学窗口宽,电化学稳定性好,电荷传递电阻小,电催化活性高和电子转移速率快等电化学特性.化学修饰石墨烯,特别是氧化石墨烯(GO)和还原氧化石墨烯(rGO),可以被宏量、廉价地制备出来.它们具有可加工性能,可以被组装、加工或复合成具有可控组成和微结构的宏观电极材料.因此,石墨烯及其化学修饰衍生物是用于电化学生物传感的独特而诱人的电极材料.例如,GO是一种化学修饰石墨烯,也是石墨烯的重要前驱体;其边缘具有大量的羧基可用于共价固定酶,从而能实现酶电极的生物检测.在GO上的不可逆蛋白吸附也可以促进蛋白质的直接电子转移以提高其电化学检测性能.但是,GO大量的含氧官能团破坏了石墨烯本征的共轭结构,降低了其电学性能并限制了其实际应用.GO可以通过化学、电化学、热还原等技术转化成rGO,从而能部分修复其共轭结构,提高其导电性与传感性能.另一方面,石墨烯是一种零带隙材料;原子掺杂可以调控其能带结构,提高其电催化性能.石墨烯材料也常常需要通过与其它功能材料的复合进一步改善其可分散与可加工性能,提高其电催化活性和电化学选择性.本文综述了本征石墨烯(包括GO,rGO和掺杂石墨烯)以及石墨烯与生物分子、高分子、离子液体、金属或金属氧化物纳米粒子等复合材料修饰电极在检测各种生物分子方面的研究进展,并对该研究领域进行了展望.
引用
收藏
页码:319 / 332
页数:14
相关论文
共 54 条
[31]  
Electrochemical bisphenol A sensor based on N-doped graphene sheets[J] . Haixia Fan,Yan Li,Dan Wu,Hongmin Ma,Kexia Mao,Dawei Fan,Bin Du,He Li,Qin Wei.Analytica Chimica Acta . 2011
[32]  
Electrochemical detection of DNA damage induced by acrylamide and its metabolite at the graphene-ionic liquid-Nafion modified pyrolytic graphite electrode[J] . Yanyan Qiu,Xiangjin Qu,Jing Dong,Shiyun Ai,Ruixia Han.Journal of Hazardous Materials . 2011 (1)
[33]  
Graphene-based hybrid materials and devices for biosensing[J] . Mayra S. Artiles,Chandra Sekhar Rout,Timothy S. Fisher.Advanced Drug Delivery Reviews . 2011 (14)
[34]   Stacked graphene nanofibers doped polypyrrole nanocomposites for electrochemical sensing [J].
Scott, Claire L. ;
Zhao, Guanjia ;
Pumera, Martin .
ELECTROCHEMISTRY COMMUNICATIONS, 2010, 12 (12) :1788-1791
[35]   Nanomolar detection of dopamine in the presence of ascorbic acid at β-cyclodextrin/graphene nanocomposite platform [J].
Tan, Lin ;
Zhou, Kai-Ge ;
Zhang, Yong-Hui ;
Wang, Hang-Xing ;
Wang, Xue-Dong ;
Guo, Yun-Fan ;
Zhang, Hao-Li .
ELECTROCHEMISTRY COMMUNICATIONS, 2010, 12 (04) :557-560
[36]   Electrochemical detection of dopamine in the presence of ascorbic acid using graphene modified electrodes [J].
Kim, Yang-Rae ;
Bong, Sungyool ;
Kang, Yeon-Joo ;
Yang, Yongtak ;
Mahajan, Rakesh Kumar ;
Kim, Jong Seung ;
Kim, Hasuck .
BIOSENSORS & BIOELECTRONICS, 2010, 25 (10) :2366-2369
[37]  
Hydrothermal preparation and electrochemical sensing properties of TiO 2 –graphene nanocomposite[J] . Yang Fan,Hai-Ting Lu,Jin-Hang Liu,Chun-Peng Yang,Qiang-Shan Jing,Yu-Xia Zhang,Xing-Kun Yang,Ke-Jing Huang.Colloids and Surfaces B: Biointerfaces . 2010 (1)
[38]  
Novel electrochemical sensor based on functionalized graphene for simultaneous determination of adenine and guanine in DNA[J] . Ke-Jing Huang,De-Jun Niu,Jun-Yong Sun,Cong-Hui Han,Zhi-Wei Wu,Yan-Li Li,Xiao-Qin Xiong.Colloids and Surfaces B: Biointerfaces . 2010 (2)
[39]   A graphene-based electrochemical sensor for sensitive detection of paracetamol [J].
Kang, Xinhuang ;
Wang, Jun ;
Wu, Hong ;
Liu, Jun ;
Aksay, Ilhan A. ;
Lin, Yuehe .
TALANTA, 2010, 81 (03) :754-759
[40]  
Direct electrochemistry and electrocatalysis of hemoglobin protein entrapped in graphene and chitosan composite film[J] . Huifeng Xu,Hong Dai,Guonan Chen.Talanta . 2010 (1)