Modification of LiMn2O4 Cathodes to Boost Kinetics Match via rGO for High-Performance Rocking-Chair Lithium-Ion Capacitors

被引:5
作者
Li, Haoquan [1 ]
Chen, Nuo [1 ]
Liu, Tianfu [1 ]
Wang, Ruiting [1 ]
Gao, Xiang [1 ]
Guo, Longlong [1 ]
Chen, Huqiang [1 ]
Shi, Rongrong [1 ]
Gao, Wensheng [1 ]
Bai, Yongxiao [1 ]
机构
[1] Lanzhou Univ, Inst Soft Matter & Adv Funct Mat, Carbon New Mat Ind Technol Ctr Gansu Prov, Minist Educ,Key Lab Special Funct Mat & Struct Des, Lanzhou 730000, Peoples R China
基金
中国国家自然科学基金;
关键词
rocking-chair lithium-ion capacitors; kineticsmatch; lithium manganate; graphene oxide; conductivenetwork; NANOPARTICLES;
D O I
10.1021/acsami.4c06850
中图分类号
TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
The rocking-chair lithium-ion capacitors (RLICs), composed of a battery-type cathode and capacitive-type anode, alleviates the issue of increased internal resistance caused by electrolyte consumption during the cycling process of the lithium-ion capacitors (LICs). However, the poor conductivity of cathode materials and the mismatch between the cathode and anode are the key issues that hinder its commercial application. In this work, a modification simplification strategy is proposed to tailor the conductivity of the cathode and matching characteristic with the anode. The in situ grown lithium manganate (LMO) is featured with a three-dimensional conductive network constructed by reduced graphene oxide (rGO). The optimized LMO/rGO composite cathode demonstrates an excellent rate performance, lithium-ion diffusion rate, and cycling performance. After assembling an RLICs with activated carbon (AC), the RLICs exhibits an energy density of as high as 239.11 Wh/kg at a power density of 400 W/kg. Even at a power density of 200 kW/kg, its energy density can maintain at 39.9 Wh/kg. These excellent electrochemical performances are mainly attributed to the compounding of LMO with rGO, which not only improves the conductivity of the cathode but also realizes a better matching with the capacitive-type anode. This modification strategy provides a reference for the further development of energy storage devices suitable for actual production conditions and application scenarios.
引用
收藏
页码:44697 / 44705
页数:9
相关论文
共 40 条
[1]   Impact of phosphorus structural position on the electrochemical enhancement of phosphorus doped LiMn2O4 [J].
Arabolla Rodriguez, Renier ;
Montoro, Luciano A. ;
Avila Santos, Manuel ;
Mohallem, Nelcy Della Santina ;
Mosqueda Laffita, Yodalgis ;
Perez-Cappe, Eduardo L. .
ELECTROCHIMICA ACTA, 2020, 337
[2]   On the Gelation of Graphene Oxide [J].
Bai, Hua ;
Li, Chun ;
Wang, Xiaolin ;
Shi, Gaoquan .
JOURNAL OF PHYSICAL CHEMISTRY C, 2011, 115 (13) :5545-5551
[3]   Composite LiFePO4/AC high rate performance electrodes for Li-ion capacitors [J].
Boeckenfeld, N. ;
Kuehnel, R. -S. ;
Passerini, S. ;
Winter, M. ;
Balducci, A. .
JOURNAL OF POWER SOURCES, 2011, 196 (08) :4136-4142
[4]   In situ formed partially disordered phases as earth-abundant Mn-rich cathode materials [J].
Cai, Zijian ;
Ouyang, Bin ;
Hau, Han-Ming ;
Chen, Tina ;
Giovine, Raynald ;
Koirala, Krishna Prasad ;
Li, Linze ;
Ji, Huiwen ;
Ha, Yang ;
Sun, Yingzhi ;
Huang, Jianping ;
Chen, Yu ;
Wu, Vincent ;
Yang, Wanli ;
Wang, Chongmin ;
Clement, Raphaele J. ;
Lun, Zhengyan ;
Ceder, Gerbrand .
NATURE ENERGY, 2024, 9 (01) :27-36
[5]   In situ anchoring MnO nanoparticles on self-supported 3D interconnected graphene scroll framework: A fast kinetics boosted ultrahigh-rate anode for Li-ion capacitor [J].
Chen, Penghui ;
Zhou, Weiya ;
Xiao, Zhuojian ;
Li, Shaoqing ;
Chen, Huiliang ;
Wang, Yanchun ;
Wang, Zibo ;
Xi, Wei ;
Xia, Xiaogang ;
Xie, Sishen .
ENERGY STORAGE MATERIALS, 2020, 33 :298-308
[6]   Synthesis and superior cathode performance of sandwiched LiMn2O4@rGO nanocomposites for lithium-ion batteries [J].
Chen, Yinghao ;
Tian, Yulan ;
Qiu, Yunzhong ;
Liu, Zhifang ;
He, Huanhuan ;
Li, Baojun ;
Cao, Huaqiang .
MATERIALS TODAY ADVANCES, 2019, 1
[7]   One-step hydrothermal synthesis of three-dimensional porous Ni-Co sulfide/reduced graphene oxide composite with optimal incorporation of carbon nanotubes for high performance supercapacitors [J].
Chiu, Cheng-Ting ;
Chen, Dong-Hwang .
NANOTECHNOLOGY, 2018, 29 (17)
[8]   Achieving high energy density and high power density with pseudocapacitive materials [J].
Choi, Christopher ;
Ashby, David S. ;
Butts, Danielle M. ;
DeBlock, Ryan H. ;
Wei, Qiulong ;
Lau, Jonathan ;
Dunn, Bruce .
NATURE REVIEWS MATERIALS, 2020, 5 (01) :5-19
[9]   Advanced physico-chemical characterization of chitosan by means of TGA coupled on-line with FTIR and GCMS: Thermal degradation and water adsorption capacity [J].
Corazzari, Ingrid ;
Nistico, Roberto ;
Turci, Francesco ;
Faga, Maria Giulia ;
Franzoso, Flavia ;
Tabasso, Silvia ;
Magnacca, Giuliana .
POLYMER DEGRADATION AND STABILITY, 2015, 112 :1-9
[10]   Single-Crystalline LiMn2O4 Nanotubes Synthesized Via Template-Engaged Reaction as Cathodes for High-Power Lithium Ion Batteries [J].
Ding, Yuan-Li ;
Xie, Jian ;
Cao, Gao-Shao ;
Zhu, Tie-Jun ;
Yu, Hong-Ming ;
Zhao, Xin-Bing .
ADVANCED FUNCTIONAL MATERIALS, 2011, 21 (02) :348-355