English

Valley-selective optical Stark effect probed by Kerr rotation

Materials Science 2018-01-31 v1 Mesoscale and Nanoscale Physics

Abstract

The ability to monitor and control distinct states is at the heart of emerging quantum technologies. The valley pseudospin in transition metal dichalcogenide (TMDC) monolayers is a promising degree of freedom for such control, with the optical Stark effect allowing for valley-selective manipulation of energy levels in WS2_2 and WSe2_2 using ultrafast optical pulses. Despite these advances, understanding of valley-sensitive optical Stark shifts in TMDCs has been limited by reflectance-based detection methods where the signal is small and prone to background effects. More sensitive polarization-based spectroscopy is required to better probe ultrafast Stark shifts for all-optical manipulation of valley energy levels. Here, we show time-resolved Kerr rotation to be a more sensitive probe of the valley-selective optical Stark effect in monolayer TMDCs. Compared to the established time-resolved reflectance methods, Kerr rotation is less sensitive to background effects. Kerr rotation provides a five-fold improvement in the signal-to-noise ratio of the Stark effect optical signal and a more precise estimate of the energy shift. This increased sensitivity allows for observation of an optical Stark shift in monolayer MoS2_2 that exhibits both valley- and energy-selectivity, demonstrating the promise of this method for investigating this effect in other layered materials and heterostructures.

Keywords

Cite

@article{arxiv.1710.09739,
  title  = {Valley-selective optical Stark effect probed by Kerr rotation},
  author = {Trevor LaMountain and Hadallia Bergeron and Itamar Balla and Teodor K. Stanev and Mark C. Hersam and Nathaniel P. Stern},
  journal= {arXiv preprint arXiv:1710.09739},
  year   = {2018}
}

Comments

9 pages, 4 figures, supplementary information

R2 v1 2026-06-22T22:26:41.576Z