Production of chlorine-containing functional group doped graphene powders using Yucel's method as anode materials for Li-ion batteries

被引:18
作者
Gursu, Hurmus [1 ]
Guner, Yagmur [2 ]
Arvas, Melih Besir [1 ]
Dermenci, Kamil Burak [3 ]
Savaci, Umut [3 ]
Gencten, Metin [4 ]
Turan, Servet [3 ]
Sahin, Yucel [1 ]
机构
[1] Yildiz Tech Univ, Fac Art & Sci, Dept Chem, TR-34220 Istanbul, Turkey
[2] Pamukkale Univ, Dept Met & Mat Engn, TR-20160 Denizli, Turkey
[3] Eskisehir Tech Univ, Dept Mat Sci & Engn, TR-26555 Eskisehir, Turkey
[4] Yildiz Tech Univ, Fac Chem & Met Engn, Dept Met & Mat Engn, TR-34210 Istanbul, Turkey
关键词
GRAPHITE NEGATIVE ELECTRODES; ELECTROCHEMICAL EXFOLIATION; POTENTIAL APPLICATION; CYCLIC VOLTAMMETRY; IN-SITU; PERFORMANCE; OXIDE; SUPERCAPACITOR; PHOTOCATALYSIS; NANOSHEETS;
D O I
10.1039/d1ra07653a
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
In this study, the one-step electrochemical preparation of chlorine doped and chlorine-oxygen containing functional group doped graphene-based powders was carried out by Yucel's method, with the resultant materials used as anode materials for lithium (Li)-ion batteries. Cl atoms and ClOx (x = 2, 3 or 4) groups, confirmed by X-ray photoelectron spectroscopy analysis, were covalently doped into the graphene powder network to increase the defect density in the graphene framework and improve the electrochemical performance of Li-ion batteries. The microscopic properties of the Cl-doped graphene powder were investigated by scanning electron microscopy and transmission electron microscopy (TEM) analyses. TEM analysis showed that the one-layer thickness of the graphene was approximately 0.33 nm. Raman spectroscopy analysis was carried out to determine the defect density of the graphene structures. The G peak obtained in the Raman spectra is related to the formation of sp(2) hybridized carbons in the graphene-based powders. The 2D peak seen in the spectra shows that the synthesized graphene-based powders have optically transparent structures. In addition, the number of sp(2) hybridized carbon rings was calculated to be 22, 19, and 38 for the Cl-GP1, Cl-GP2, and Cl-GOP samples, respectively. As a result of the charge/discharge tests of the electrodes as anodes in Li-ion batteries, Cl-GP2 exhibits the best electrochemical performance of 493 mA h g(-1) at a charge/discharge current density of 50 mA g(-1).
引用
收藏
页码:40059 / 40071
页数:13
相关论文
共 79 条
[1]   A two-dimensional material for high capacity supercapacitors: S-doped graphene [J].
Arvas, Melih B. ;
Gencten, Metin ;
Sahin, Yucel .
INTERNATIONAL JOURNAL OF ENERGY RESEARCH, 2020, 44 (03) :1624-1635
[2]   Fabrication of high-performance symmetrical coin cell supercapacitors by using one step and green synthesis sulfur doped graphene powders† [J].
Arvas, Melih Besir ;
Karatepe, Nilgun ;
Gencten, Metin ;
Sahin, Yucel .
NEW JOURNAL OF CHEMISTRY, 2021, 45 (15) :6928-6939
[3]   Preparation of different heteroatom doped graphene oxide based electrodes by electrochemical method and their supercapacitor applications [J].
Arvas, Melih Besir ;
Gursu, Hurmus ;
Gencten, Metin ;
Sahin, Yucel .
JOURNAL OF ENERGY STORAGE, 2021, 35
[4]   One-step synthesized N-doped graphene-based electrode materials for supercapacitor applications [J].
Arvas, Melih Besir ;
Gencten, Metin ;
Sahin, Yucel .
IONICS, 2021, 27 (05) :2241-2256
[5]   Electrochemical formation of molybdenum phosphate on a pencil graphite electrode and its potential application for the detection of phosphate ions [J].
Arvas, Melih Besir ;
Gursu, Hurmus ;
Gencten, Metin ;
Sahin, Yucel .
ANALYTICAL METHODS, 2018, 10 (35) :4282-4291
[6]   On the correlation between surface chemistry and performance of graphite negative electrodes for Li ion batteries [J].
Aurbach, D ;
Markovsky, B ;
Weissman, I ;
Levi, E ;
Ein-Eli, Y .
ELECTROCHIMICA ACTA, 1999, 45 (1-2) :67-86
[7]  
Balbuena P., 2004, LITHIUM ION BATTERIE
[8]   XANES, Raman and XRD study of anthracene-based cokes and saccharose-based chars submitted to high-temperature pyrolysis [J].
Bernard, S. ;
Beyssac, O. ;
Benzerara, K. ;
Findling, N. ;
Tzvetkov, G. ;
Brown, G. E., Jr. .
CARBON, 2010, 48 (09) :2506-2516
[9]   High rate capability of graphite negative electrodes for lithium-ion batteries [J].
Buqa, H ;
Goers, D ;
Holzapfel, M ;
Spahr, ME ;
Novák, P .
JOURNAL OF THE ELECTROCHEMICAL SOCIETY, 2005, 152 (02) :A474-A481
[10]   Water-enhanced oxidation of graphite to graphene oxide with controlled species of oxygenated groups [J].
Chen, Ji ;
Zhang, Yao ;
Zhang, Miao ;
Yao, Bowen ;
Li, Yingru ;
Huang, Liang ;
Li, Chun ;
Shi, Gaoquan .
CHEMICAL SCIENCE, 2016, 7 (03) :1874-1881