Nitrogen-doped graphene quantum dots coated with gold nanoparticles for electrochemiluminescent glucose detection using enzymatically generated hydrogen peroxide as a quencher

被引:19
作者
Ran, Peiyao [1 ]
Song, Jinyi [1 ]
Mo, Fangjing [1 ]
Wu, Jingling [1 ]
Liu, Pingkun [1 ]
Fu, Yingzi [1 ]
机构
[1] Southwest Univ, Key Lab Luminescence & Real Time Anal, Sch Chem & Chem Engn, Minist Educ, Chongqing 400715, Peoples R China
基金
中国国家自然科学基金;
关键词
Doping heteroatoms; Signal off; Quench mechanism; Chitosan; Peroxydisulfate; In situ reduction; Metal complex; Glassy carbon electrode; Electrochemiluminescence; RESONANCE ENERGY-TRANSFER; ELECTROGENERATED CHEMILUMINESCENCE; CARBON DOTS; OXIDE; FABRICATION; SYSTEM;
D O I
10.1007/s00604-019-3397-6
中图分类号
O65 [分析化学];
学科分类号
070302 ; 081704 ;
摘要
Nitrogen-doped graphene quantum dots (N-GQDs) were prepared from dicyandiamide and thenused as both an electrochemiluminescence (ECL) emitter and a reductant to produce gold nanoparticles (Au-N-GQDs) on their surface without using any reagent. In order to avoid resonance energy transfer, the Au-N-GQDs were stabilized with chitosan. Transmission electron microscopy (TEM), energy dispersive X-ray spectroscopy (EDX), UV-vis spectroscopy (UV-vis) and ECL methods were used to characterize the nanocomposite. The materials was placed on a glassy carbon electrode (GCE), and the ECL signals are found to be strongly quenched by hydrogen peroxide that is enzymatically produced by oxidation of glucose. With the applied typical potential of -1.7V, the ECL of the Au-N-GQDs modified GCE decreases linearly in the 10 nM to 5.0 mu M glucose concentration range, and the lower detection limit is 3.3 nM. The influence of H2O2 to the signal has been discussed and a possible mechanism has been presented.
引用
收藏
页数:7
相关论文
共 40 条
[1]  
Ajayan PM, 1991, NATURE, V354, P56, DOI [10.1038/354056a0, DOI 10.1038/354056A0]
[2]   Growth and trends of fullerene research as reflected in its journal literature [J].
Braun, T ;
Schubert, AP ;
Kostoff, RN .
CHEMICAL REVIEWS, 2000, 100 (01) :23-37
[3]   In situ gold-loaded titania photonic crystals with enhanced photocatalytic activity [J].
Cai, Zhongyu ;
Xiong, Zhigang ;
Lu, Xianmao ;
Teng, Jinghua .
JOURNAL OF MATERIALS CHEMISTRY A, 2014, 2 (02) :545-553
[4]   Aptamer based electrochemiluminescent determination of bisphenol A by using carboxylated graphitic carbon nitride [J].
Cao, Hai-Xia ;
Wang, Li ;
Pan, Chang-Gang ;
He, Yu-Sheng ;
Liang, Guo-Xi .
MICROCHIMICA ACTA, 2018, 185 (10)
[5]  
Carrara S., 2017, Angew. Chem, V129, P4835, DOI [DOI 10.1002/ANGE.201611879, 10.1002/ange.201611879]
[6]   Electrochemiluminescence based competitive immunoassay for Sudan I by using gold-functionalized graphitic carbon nitride and Au/Cu alloy nanoflowers [J].
Chen, Wanlu ;
Yao, Xun ;
Zhou, Xinchun ;
Zhao, Kang ;
Deng, Anping ;
Li, Jianguo .
MICROCHIMICA ACTA, 2018, 185 (05)
[7]   Tuning of nitrogen-doped carbon nanotubes as catalyst support for liquid-phase reaction [J].
Chizari, Kambiz ;
Janowska, Izabela ;
Houlle, Matthieu ;
Florea, Ileana ;
Ersen, Ovidiu ;
Romero, Thierry ;
Bernhardt, Pierre ;
Ledoux, Marc Jacques ;
Pham-Huu, Cuong .
APPLIED CATALYSIS A-GENERAL, 2010, 380 (1-2) :72-80
[8]   Electrogenerated chemiluminescence of nanomaterials for bioanalysis [J].
Deng, Shengyuan ;
Ju, Huangxian .
ANALYST, 2013, 138 (01) :43-61
[9]   Photoluminescence, chemiluminescence and anodic electrochemiluminescence of hydrazide-modified graphene quantum dots [J].
Dong, Yongqiang ;
Dai, Ruiping ;
Dong, Tongqing ;
Chi, Yuwu ;
Chen, Guonan .
NANOSCALE, 2014, 6 (19) :11240-11245
[10]   Graphene Quantum Dots/L-Cysteine Coreactant Electrochemiluminescence System and Its Application in Sensing Lead(II) Ions [J].
Dong, Yongqiang ;
Tian, Wanrong ;
Ren, Shuyan ;
Dai, Ruiping ;
Chi, Yuwu ;
Chen, Guonan .
ACS APPLIED MATERIALS & INTERFACES, 2014, 6 (03) :1646-1651