| Literature DB >> 29094457 |
Xian Tang1, Weiyuan Liang1, Jinlai Zhao2, Zhongjun Li1, Meng Qiu1, Taojian Fan1, Crystal Shaojuan Luo1, Ye Zhou3, Yu Li2, Zhinan Guo1, Dianyuan Fan1, Han Zhang1.
Abstract
Phosphorene has attracted great interest due to its unique electronic and optoelectronic properties owing to its tunable direct and moderate band-gap in association with high carrier mobility. However, its intrinsic instability in air seriously hinders its practical applications, and problems of technical complexity and in-process degradation exist in currently proposed stabilization strategies. A facile pathway in obtaining and stabilizing phosphorene through a one-step, ionic liquid-assisted electrochemical exfoliation and synchronous fluorination process is reported in this study. This strategy enables fluorinated phosphorene (FP) to be discovered and large-scale, highly selective few-layer FP (3-6 atomic layers) to be obtained. The synthesized FP is found to exhibit unique morphological and optical characteristics. Possible atomistic fluorination configurations of FP are revealed by core-level binding energy shift calculations in combination with spectroscopic measurements, and the results indicate that electrolyte concentration significantly modulates the fluorination configurations. Furthermore, FP is found to exhibit enhanced air stability thanks to the antioxidation and antihydration effects of the introduced fluorine adatoms, and demonstrate excellent photothermal stability during a week of air exposure. These findings pave the way toward real applications of phosphorene-based nanophotonics.Entities:
Keywords: electrochemical exfoliation; first-principles; fluorinated phosphorene; photothermal properties; stability
Year: 2017 PMID: 29094457 DOI: 10.1002/smll.201702739
Source DB: PubMed Journal: Small ISSN: 1613-6810 Impact factor: 13.281