MXenes公司
钒
材料科学
储能
超级电容器
阳极
电解质
电化学窗口
锂(药物)
化学工程
纳米技术
冶金
离子电导率
化学
功率(物理)
电容
物理化学
电极
内分泌学
工程类
物理
医学
量子力学
作者
Mohit Saraf,Teng Zhang,Timofey Averianov,Christopher E. Shuck,Robert W. Lord,Ekaterina Pomerantseva,Yury Gogotsi
标识
DOI:10.1002/smtd.202201551
摘要
Abstract MXenes offer high metallic conductivity and redox capacitance that are attractive for high‐power, high‐energy storage devices. However, they operate limitedly under high anodic potentials due to irreversible oxidation. Pairing them with oxides to design asymmetric supercapacitors may expand the voltage window and increase the energy storage capabilities. Hydrated lithium preintercalated bilayered V 2 O 5 ( δ ‐Li x V 2 O 5 · n H 2 O) is attractive for aqueous energy storage due to its high Li capacity at high potentials; however, its poor cyclability remains a challenge. To overcome its limitations and achieve a wide voltage window and excellent cyclability, it is combined with V 2 C and Nb 4 C 3 MXenes. Asymmetric supercapacitors employing lithium intercalated V 2 C (Li‐V 2 C) or tetramethylammonium intercalated Nb 4 C 3 (TMA‐Nb 4 C 3 ) MXenes as the negative electrode, and a δ ‐Li x V 2 O 5 · n H 2 O composite with carbon nanotubes as the positive electrode in 5 m LiCl electrolyte operate over wide voltage windows of 2 and 1.6 V, respectively. The latter shows remarkably high cyclability—capacitance retention of ≈95% after 10 000 cycles. This work highlights the importance of selecting appropriate MXenes to achieve a wide voltage window and a long cycle life in combination with oxide anodes to demonstrate the potential of MXenes beyond Ti 3 C 2 in energy storage.
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