2D-on-2D core-shell Co3(PO4)2 stacked micropetals@Co2Mo3O8 nanosheets and binder-free 2D CNT-Ti3C2TX-MXene electrodes for high-energy solid-state flexible supercapacitors

被引:26
作者
Patil, Amar M. [1 ]
Chodankar, Nilesh R. [2 ]
Jung, Euigeol [1 ]
Roy, Sanjib [1 ]
Dubal, Deepak P. [3 ]
Guan, Guoqing [4 ]
Han, Young-Kyu [2 ]
Jun, Seong Chan [1 ]
机构
[1] Yonsei Univ, Nanoelectromech Device Lab, Sch Mech Engn, Seoul 120749, South Korea
[2] Dongguk Univ Seoul, Dept Energy & Mat Engn, Seoul 04620, South Korea
[3] Queensland Univ Technol QUT, Ctr Mat Sci, Sch Chem & Phys, 2 George St, Brisbane, Qld 4000, Australia
[4] Hirosaki Univ, Inst Reg Innovat IRI, Energy Convers Engn Lab, Aomori, Osaka 0300813, Japan
基金
新加坡国家研究基金会;
关键词
TITANIUM CARBIDE MXENE; ELECTROCHEMICAL PERFORMANCE; HYDROGEN EVOLUTION; NANOPARTICLES; FABRICATION; NANOCRYSTALS; NANOSPHERES; EFFICIENT; COMPOSITE; BATTERY;
D O I
10.1039/d1ta07919k
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
The structural instability and sluggish kinetics of conventional positive electrodes with the lower capacitance of carbon-based negative electrodes result in an inferior performance for state-of-art supercapacitors (SCs). A general yet sustainable approach is proposed here to overcome this hitch by assembling hybrid SC cells utilising porous and stable 2D-on-2D core-shell and carbon/pseudocapacitive composite electrodes. Porous Co-3(PO4)(2) transparent stacked micropetals (TSMs) were synthesised and decorated with Co2Mo3O8 nanosheets (NSs) (Co-3(PO4)(2)@Co2Mo3O8) forming a 2D-on-2D core-shell positive electrode, which was combined with a 2D carbon nanotube/MXene (CNT-Ti3C2TX) composite negative electrode. The core-shell electrode achieved a specific capacity of 184.7 mA h g(-1) (738 mF cm(-2)) and cycling stability of 95.6% over 15 000 charge/discharge cycles. The CNT-Ti3C2TX electrode exhibited a remarkable areal capacitance of 187.5 mF cm(-2) and cycling stability of 93.1%. Consequently, the assembled unique hybrid solid-state SCs delivered an exceptional volumetric capacitance of 7.9 F cm(-3) and a specific energy of 74.06 W h kg(-1) (2.47 mW h cm(-3)) at a specific power and cycling stability of 1.13 kW kg(-1) and 93.2%, respectively. Overall, the techniques and electrode materials presented in this study can serve as a reference to produce a range of electrode materials for next-generation energy storage devices.
引用
收藏
页码:26135 / 26148
页数:14
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