| Literature DB >> 33834770 |
Shuo Li1, Zhaodi Fan1, Guiqing Wu2, Yanyan Shao1, Zhou Xia1, Chaohui Wei1, Fei Shen1, Xiaoling Tong1, Jinchao Yu3, Kang Chen2, Menglei Wang1, Yu Zhao1, Zhipu Luo4, Muqiang Jian5, Jingyu Sun1,5, Richard B Kaner6, Yuanlong Shao1,5.
Abstract
MXenes are an emerging class of highly conductive two-dimensional (2D) materials with electrochemical storage features. Oriented macroscopic Ti3C2Tx fibers can be fabricated from a colloidal 2D nematic phase dispersion. The layered conductive Ti3C2Tx fibers are ideal candidates for constructing high-speed ionic transport channels to enhance the electrochemical capacitive charge storage performance. In this work, we assemble Ti3C2Tx fibers with a high degree of flake orientation by a wet spinning process with controlled spinning speeds and morphology of the spinneret. In addition to the effects of cross-linking of magnesium ions between Ti3C2Tx flakes, the electronic conductivity and mechanical strength of the as-prepared fibers have been improved to 7200 S cm-1 and 118 MPa, respectively. The oriented Ti3C2Tx fibers present a volumetric capacitive charge storage capability of up to 1360 F cm-3 even in a Mg-ion based neutral electrolyte, with contributions from both nanofluidic ion transport and Mg-ion intercalation pseudocapacitance. The oriented 2D Ti3C2Tx driven nanofluidic channels with great electronic conductivity and mechanical strength endows the MXene fibers with attributes for serving as conductive ionic cables and active materials for fiber-type capacitive electrochemical energy storage, biosensors, and potentially biocompatible fibrillar tissues.Entities:
Keywords: 2D ionic transport channels; MXene; flake orientation; ionic cross-linking; smart fiber
Year: 2021 PMID: 33834770 DOI: 10.1021/acsnano.1c02271
Source DB: PubMed Journal: ACS Nano ISSN: 1936-0851 Impact factor: 15.881