Design of a Scalable Dendritic Copper@Ni2+, Zn2+ Cation-Substituted Cobalt Carbonate Hydroxide Electrode for Efficient Energy Storage

被引:24
作者
Miao, Yidong [1 ]
Wang, Tongde [2 ]
Hua, Jiali [2 ]
Liu, Keyong [2 ]
Hu, Zeyuan [2 ]
Li, Qian [2 ]
Zhang, Man [2 ]
Zhang, Yuxuan [2 ]
Liu, Shuhang [2 ]
Xue, Xiaolan [2 ]
Qi, Jiqiu [2 ]
Wei, Fuxiang [2 ]
Meng, Qingkun [2 ]
Ren, Yaojian [2 ]
Xiao, Bin [2 ]
Sui, Yanwei [2 ]
Cao, Peng [3 ]
机构
[1] China Univ Min & Technol, Sch Chem Engn & Technol, Xuzhou 221116, Jiangsu, Peoples R China
[2] China Univ Min & Technol, Sch Mat Sci & Phys, Jiangsu Prov High Efficiency Energy Storage Techn, Xuzhou 221116, Jiangsu, Peoples R China
[3] Univ Auckland, Dept Chem & Mat Engn, Auckland 1142, New Zealand
关键词
carbonate hydroxide; cations doping; scalable copper; DFT calculations; energy storage; ASYMMETRIC SUPERCAPACITORS; OXIDE MATERIALS; ARRAYS; NANOFLAKES; NANOSHEETS; CO3O4; NI; CO;
D O I
10.1021/acsami.1c07764
中图分类号
TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
Design and fabrication of novel electrode materials with excellent specific capacitance and cycle stability are urgent for advanced energy storage devices, and the combinability of multiple modification methods is still insufficient. Herein, Ni2+, Zn2+ double-cation-substitution Co carbonate hydroxide (NiZnCo-CH) nanosheets arrays were established on 3D copper with controllable morphology (3DCu@NiZnCo-CH). The self-standing scalable dendritic copper offers a large surface area and promotes fast electron transport. The 3DCu@NiZnCo-CH electrode shows a markedly improved electro-chemical performance with a high specific capacity of similar to 1008 C g(-1) at 1 A g(-1) (3.2, 2.83, and 1.26 times larger than Co-CH, ZnCo-CH, and NiCo-CH, respectively) and outstanding rate capability (828.8 C g(-1) at 20 A g(-1)) due to its compositional and structural advantages. Density functional theory (DFT) calculation results illustrate that cation doping adjusts the adsorption process and optimizes the charge transfer kinetics. Moreover, an aqueous hybrid supercapacitor based on 3DCu@NiZnCo-CH and rGO demonstrates a high energy density of 42.29 Wh kg(-1) at a power density of 376.37 W kg(-1), along with superior cycling performance (retained 86.7% of the initial specific capacitance after 10,000 cycles). Impressively, these optimized 3DCu@NiZnCo-CH//rGO devices with ionic liquid can be operated stably in a large potential range of 4 V with greatly enhanced energy density and power capability (110.12 Wh kg(-1) at a power density of 71.69 W kg(-1)). These findings may shed some light on the rational design of transition-metal compounds with tunable architectures by multiple modification methods for efficient energy storage.
引用
收藏
页码:39205 / 39214
页数:10
相关论文
共 47 条
[1]   Pseudocapacitive oxide materials for high-rate electrochemical energy storage [J].
Augustyn, Veronica ;
Simon, Patrice ;
Dunn, Bruce .
ENERGY & ENVIRONMENTAL SCIENCE, 2014, 7 (05) :1597-1614
[2]   Phase transformation of NiCo hydroxides derived from carbonate anion and its effect on electrochemical pseudocapacitor performance [J].
Baek, Seong-Ho ;
Jeong, Young-Min ;
Kim, Dong Yeon ;
Park, Il-Kyu .
CHEMICAL ENGINEERING JOURNAL, 2020, 393
[3]   Co-doped graphene sheets as a novel adsorbent for hydrogen storage: DFT and DFT-D3 correction dispersion study [J].
Bakhshi, Fatemeh ;
Farhadian, Nafiseh .
INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2018, 43 (17) :8355-8364
[4]   Assembling Co9S8 nanoflakes on Co3O4 nanowires as advanced core/shell electrocatalysts for oxygen evolution reaction [J].
Deng, Shengjue ;
Shen, Shenghui ;
Zhong, Yu ;
Zhang, Kaili ;
Wu, Jianbo ;
Wang, Xiuli ;
Xia, Xinhui ;
Tu, Jiangping .
JOURNAL OF ENERGY CHEMISTRY, 2017, 26 (06) :1203-1209
[5]   Anchoring sea urchin-like cobalt-nickel carbonate hydroxide on 3D carbon sponge for electrochemical energy storage [J].
Fang, Songwen ;
Li, Jing ;
Xiang, Cuili ;
Zou, Yongjin ;
Xu, Fen ;
Sun, Lixian ;
Zhang, Jian .
JOURNAL OF ALLOYS AND COMPOUNDS, 2020, 845
[6]   Dual Tuning of Ni-Co-A (A = P, Se, O) Nanosheets by Anion Substitution and Holey Engineering for Efficient Hydrogen Evolution [J].
Fang, Zhiwei ;
Peng, Lele ;
Qian, Yumin ;
Zhang, Xiao ;
Xie, Yujun ;
Cha, Judy J. ;
Yu, Guihua .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2018, 140 (15) :5241-5247
[7]   Crystal structure of cobalt hydroxide carbonate Co2CO3(OH)2: density functional theory and X-ray diffraction investigation [J].
Gonzalez-Lopez, Jorge ;
Cockcroft, Jeremy K. ;
Fernandez-Gonzalez, Angeles ;
Jimenez, Amalia ;
Grau-Crespo, Ricardo .
ACTA CRYSTALLOGRAPHICA SECTION B-STRUCTURAL SCIENCE CRYSTAL ENGINEERING AND MATERIALS, 2017, 73 :868-873
[8]   Ni and Zn co-substituted Co(CO3)0.5OH self-assembled flowers array for asymmetric supercapacitors [J].
Gu, Hao ;
Zhong, Qin ;
Zeng, Yiqing ;
Zhang, Shule ;
Bu, Yunfei .
JOURNAL OF COLLOID AND INTERFACE SCIENCE, 2020, 573 :299-306
[9]   Non-noble metal-transition metal oxide materials for electrochemical energy storage [J].
Guo, Xiaotian ;
Zhang, Guangxun ;
Li, Qing ;
Xue, Huaiguo ;
Pang, Huan .
ENERGY STORAGE MATERIALS, 2018, 15 :171-201
[10]   A General Electrodeposition Strategy for Fabricating Ultrathin Nickel Cobalt Phosphate Nanosheets with Ultrahigh Capacity and Rate Performance [J].
Huang, Jun ;
Xiong, Yushuai ;
Peng, Zhongyou ;
Chen, Lingfang ;
Wang, Li ;
Xu, Yazhou ;
Tan, Licheng ;
Yuan, Kai ;
Chen, Yiwang .
ACS NANO, 2020, 14 (10) :14201-14211