| Literature DB >> 31338976 |
Peng-An Zong1, Dongho Yoo2, Peng Zhang1, Yifeng Wang3, Yujia Huang1, Shujia Yin1, Jia Liang1, Yiliang Wang4, Kunihito Koumoto5,6,7, Chunlei Wan1.
Abstract
TaS2 nanolayers with reduced dimensionality show interesting physics, such as a gate-tunable phase transition and enhanced superconductivity, among others. Here, a solution-based strategy to fabricate a large-area foil of hybrid TaS2 /organic superlattice, where [TaS2 ] monolayers and organic molecules alternatively stack in atomic scale, is proposed. The [TaS2 ] layers are spatially isolated with remarkably weakened interlayer bonding, resulting in lattice vibration close to that of TaS2 monolayers. The foil also shows excellent mechanical flexibility together with a large electrical conductivity of 1.2 × 103 S cm-1 and an electromagnetic interference of 31 dB, among the highest values for solution-processed thin films of graphene and inorganic graphene analogs. The solution-based strategy reported herein can add a new dimension to manipulate the structure and properties of 2D materials and provide new opportunities for flexible nanoelectronic devices.Entities:
Keywords: TaS2zzm321990; electrical conductivity; flexible; organic intercalation; superlattice
Year: 2019 PMID: 31338976 DOI: 10.1002/smll.201901901
Source DB: PubMed Journal: Small ISSN: 1613-6810 Impact factor: 13.281