| Literature DB >> 28924488 |
Kai Hao1, Lixiang Xu1, Fengcheng Wu1, Philipp Nagler2, Kha Tran1, Xin Ma1, Christian Schüller2, Tobias Korn2, Allan H MacDonald1, Galan Moody3, Xiaoqin Li1.
Abstract
The emerging field of valleytronics aims to exploit the valley pseudospin of electrons residing near Bloch band extrema as an information carrier. Recent experiments demonstrating optical generation and manipulation of exciton valley coherence (the superposition of electron-hole pairs at opposite valleys) in monolayer transition metal dichalcogenides (TMDs) provide a critical step towards control of this quantum degree of freedom. The charged exciton (trion) in TMDs is an intriguing alternative to the neutral exciton for control of valley pseudospin because of its long spontaneous recombination lifetime, its robust valley polarization, and its coupling to residual electronic spin. Trion valley coherence has however been unexplored due to experimental challenges in accessing it spectroscopically. In this work, we employ ultrafast two-dimensional coherent spectroscopy to resonantly generate and detect trion valley coherence in monolayer MoSe2 demonstrating that it persists for a few-hundred femtoseconds. We conclude that the underlying mechanisms limiting trion valley coherence are fundamentally different from those applicable to exciton valley coherence.Entities:
Keywords: transition-metal dichalcogenides; trions; two-dimensional coherent spectroscopy; valley coherence
Year: 2017 PMID: 28924488 PMCID: PMC5600293 DOI: 10.1088/2053-1583/aa70f9
Source DB: PubMed Journal: 2d Mater ISSN: 2053-1583 Impact factor: 7.103