| Literature DB >> 31532630 |
Zhongwen Li1, Rui-Juan Xiao1, Peng Xu1, Chunhui Zhu1, Shuaishuai Sun1, Dingguo Zheng1,2, Hong Wang1,2, Ming Zhang1, Huanfang Tian1, Huai-Xin Yang1,2,3, Jian-Qi Li1,2,4.
Abstract
Structural dynamics and changes in electronic structures driven by photoexcited carriers are critical issues in both semiconducting and optoelectronic nanodevices. Herein, a phase diagram for the transient states and relevant dynamic processes in multiwalled boron nitride nanotubes (BNNTs) has been extensively studied for a full reversible cycle after a fs-laser excitation in ultrafast TEMs, and the significant structural features and evolution of electronic natures have been investigated using pulsed electron diffraction and femtosecond-resolved electron energy-loss spectroscopy (EELS). It is revealed that nonthermal anisotropic alterations of the lattice apparently precede the phonon-driven thermal transients along the radial and axial directions. Ab initio calculations support these findings and show that electrons excited from the π to π* orbitals in the BN nanotubes weaken the intralayer bonds while strengthening the interlayer bonds along the radial direction. Importantly, time-resolved EELS measurements show contraction of the energy bandgap after fs-laser excitation associated with nonthermal structural transients. This fact verifies that laser-induced bandgap renormalization in semiconductors can essentially be correlated with both the rapid processes of excited carriers and nonthermal lattice evolution.Entities:
Keywords: BN nanotubes; bandgap renormalization; nonthermal transient; ultrafast structural dynamics; ultrafast transmission electron microscopy
Year: 2019 PMID: 31532630 DOI: 10.1021/acsnano.9b05466
Source DB: PubMed Journal: ACS Nano ISSN: 1936-0851 Impact factor: 15.881