TY - JOUR
T1 - Synergizing Electron and Ion Transports of Ti3C2TX MXene Fiber via Dot-Sheet Heterostructure and Covalent Ti─C─Ti Cross-Linking for Efficient Charge Storage and Thermal Management
AU - Wang, Huifang
AU - Zhao, Weidong
AU - Zhang, Ziting
AU - Hou, Wenteng
AU - Yin, Leang
AU - Dai, Henghan
AU - Zhu, Xinnan
AU - Zhou, Jingbo
AU - Tang, Shaochun
AU - Huang, Wei
AU - Sun, Gengzhi
N1 - Publisher Copyright:
© 2024 Wiley-VCH GmbH.
PY - 2024/11/26
Y1 - 2024/11/26
N2 - Ti3C2TX MXene with the merits of metallic conductivity, superhigh volumetric capacitance, and efficient absorption of the electromagnetic wave is considered a promising building block for fiber fabrication; nevertheless, the simultaneous improvement in electrochemical charge storage and electrical conductivity/thermal management is seldom achieved for MXene-based fibers due to the contradictory in material design. Typically, aligned and densified packing of MXene fibers is highly desired for an enhanced intra-/inter-flake electron transport; however, the narrowed inter-layer spacing restricts the kinetics of ion diffusion (the intercalation/de-intercalation of electrolyte ions) and diminishes the accessible active sites for charge storage. Herein, the electron and ion transports of Ti3C2TX MXene fiber are synergized via a unique dot-sheet heterostructure covalently bonded by Ti─C─Ti which provides the optimal inter-layer spacing for rapid ion diffusion and enhances the intra-/inter-flake cross-linking for fast electron transport. As a result, the obtained fiber offers an improved conductivity of 2405 S cm−1, a desirable capacitance of 1597 F cm−3, an impressive energy density of 19.8 mWh cm−3 for the assembled supercapacitor, superior Joule heating performance, and a photo-thermal temperature. These remarkable attributes enable their practical applications in energy-supply scenarios, such as powering LEDs and wearable thermal management.
AB - Ti3C2TX MXene with the merits of metallic conductivity, superhigh volumetric capacitance, and efficient absorption of the electromagnetic wave is considered a promising building block for fiber fabrication; nevertheless, the simultaneous improvement in electrochemical charge storage and electrical conductivity/thermal management is seldom achieved for MXene-based fibers due to the contradictory in material design. Typically, aligned and densified packing of MXene fibers is highly desired for an enhanced intra-/inter-flake electron transport; however, the narrowed inter-layer spacing restricts the kinetics of ion diffusion (the intercalation/de-intercalation of electrolyte ions) and diminishes the accessible active sites for charge storage. Herein, the electron and ion transports of Ti3C2TX MXene fiber are synergized via a unique dot-sheet heterostructure covalently bonded by Ti─C─Ti which provides the optimal inter-layer spacing for rapid ion diffusion and enhances the intra-/inter-flake cross-linking for fast electron transport. As a result, the obtained fiber offers an improved conductivity of 2405 S cm−1, a desirable capacitance of 1597 F cm−3, an impressive energy density of 19.8 mWh cm−3 for the assembled supercapacitor, superior Joule heating performance, and a photo-thermal temperature. These remarkable attributes enable their practical applications in energy-supply scenarios, such as powering LEDs and wearable thermal management.
KW - Ti─C─Ti bonds
KW - dot-sheet heterostructure
KW - electrochemical charge storage
KW - wearable thermal management
UR - http://www.scopus.com/inward/record.url?scp=85200247847&partnerID=8YFLogxK
U2 - 10.1002/adfm.202408508
DO - 10.1002/adfm.202408508
M3 - 文章
AN - SCOPUS:85200247847
SN - 1616-301X
VL - 34
JO - Advanced Functional Materials
JF - Advanced Functional Materials
IS - 48
M1 - 2408508
ER -