| Literature DB >> 27998055 |
Jianmin Luo1, Wenkui Zhang1, Huadong Yuan1, Chengbin Jin1, Liyuan Zhang1, Hui Huang1, Chu Liang1, Yang Xia1, Jun Zhang1, Yongping Gan1, Xinyong Tao1.
Abstract
Two-dimensional transition-metal carbide materials (termed MXene) have attracted huge attention in the field of electrochemical energy storage due to their excellent electrical conductivity, high volumetric capacity, etc. Herein, with inspiration from the interesting structure of pillared interlayered clays, we attempt to fabricate pillared Ti3C2 MXene (CTAB-Sn(IV)@Ti3C2) via a facile liquid-phase cetyltrimethylammonium bromide (CTAB) prepillaring and Sn4+ pillaring method. The interlayer spacing of Ti3C2 MXene can be controlled according to the size of the intercalated prepillaring agent (cationic surfactant) and can reach 2.708 nm with 177% increase compared with the original spacing of 0.977 nm, which is currently the maximum value according to our knowledge. Because of the pillar effect, the assembled LIC exhibits a superior energy density of 239.50 Wh kg-1 based on the weight of CTAB-Sn(IV)@Ti3C2 even under higher power density of 10.8 kW kg-1. When CTAB-Sn(IV)@Ti3C2 anode couples with commercial AC cathode, LIC reveals higher energy density and power density compared with conventional MXene materials.Entities:
Keywords: MXene; Ti3C2; lithium-ion capacitors; nanocomposites; pillared structure
Year: 2017 PMID: 27998055 DOI: 10.1021/acsnano.6b07668
Source DB: PubMed Journal: ACS Nano ISSN: 1936-0851 Impact factor: 15.881