| Literature DB >> 26690902 |
Zhanhai Yang1, Hui Liang1, Xusheng Wang2, Xinlei Ma3, Tao Zhang2, Yanlian Yang4, Liming Xie4, Dong Chen1, Yujia Long1, Jitao Chen2, Yunjie Chang1, Chunhua Yan2, Xinxiang Zhang2, Xueji Zhang3, Binghui Ge1, Zhian Ren1, Mianqi Xue1, Genfu Chen1.
Abstract
Two-dimensional (2D) chalcogenide materials are fundamentally and technologically fascinating for their suitable band gap energy and carrier type relevant to their adjustable composition, structure, and dimensionality. Here, we demonstrate the exfoliation of single-crystal SnS2-xSex (SSS) with S/Se vacancies into an atom-thin layer by simple sonication in ethanol without additive. The introduction of vacancies at the S/Se site, the conflicting atomic radius of sulfur in selenium layers, and easy incorporation with an ethanol molecule lead to high ion accessibility; therefore, atom-thin SSS flakes can be effectively prepared by exfoliating the single crystal via sonication. The in situ pyrolysis of such materials can further adjust their compositions, representing tunable activation energy, band gap, and also tunable response to analytes of such materials. As the most basic and crucial step of the 2D material field, the successful synthesis of an uncontaminated and atom-thin sample will further push ahead the large-scale applications of 2D materials, including, but not limited to, electronics, sensing, catalysis, and energy storage fields.Entities:
Keywords: atom-thin chalcogenides; high-performance sensor; in situ pyrolysis; liquid exfoliation; tunable activation energy
Year: 2015 PMID: 26690902 DOI: 10.1021/acsnano.5b05823
Source DB: PubMed Journal: ACS Nano ISSN: 1936-0851 Impact factor: 15.881