| Literature DB >> 28221757 |
Jincheng Zhuang1, Nan Gao2, Zhi Li1, Xun Xu1,3, Jiaou Wang4, Jijun Zhao2, Shi Xue Dou1,3, Yi Du1,3.
Abstract
Germanene, a single-atom-thick germanium nanosheet in a honeycomb lattice, was proposed to be a Dirac fermion material beyond graphene. We performed scanning tunneling microscopy and in situ Raman spectroscopy studies combined with first-principles calculations on the atomic structures and the electronic and phonon properties of germanene on Au(111). The low-buckled 1 × 1 germanene honeycomb lattice was determined to exist in an unexpected rectangular √7 × √7 superstructure. Through in situ Raman measurements, distinctive vibrational phonon modes were discovered in √7 × √7 germanene, revealing the special coupling between the Dirac fermion and lattice vibrations, namely, electron-phonon coupling (EPC). The significant enhancement of EPC is correlated with the tensile strain, which is evoked by the singular buckled structure of √7 × √7 germanene on the Au(111) substrate. Our results present clear evidence for the existence of epitaxial germanene and elucidate the exotic properties of germanene on Au(111).Entities:
Keywords: Raman; STM; electron−phonon coupling; germanene
Year: 2017 PMID: 28221757 DOI: 10.1021/acsnano.7b00687
Source DB: PubMed Journal: ACS Nano ISSN: 1936-0851 Impact factor: 15.881