1. Phonon Dephasing Dynamics in MoS2
- Author
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Joshua Casara, Zeyu Liu, Parveen Kumar, Michael Scheibner, Xiaoqin Li, Bin Fang, Yu-Ming Chang, Kha Tran, Liuyang Sun, Tengfei Luo, Galan Moody, Junho Choi, Eduardo Priego, Virginia O. Lorenz, Kevin L. Silverman, and Sebastian Roesch
- Subjects
Physics ,Photon ,Quantum decoherence ,Condensed matter physics ,Spins ,Phonon ,Mechanical Engineering ,Dephasing ,Bioengineering ,02 engineering and technology ,General Chemistry ,Condensed Matter::Mesoscopic Systems and Quantum Hall Effect ,021001 nanoscience & nanotechnology ,Condensed Matter Physics ,Condensed Matter::Materials Science ,symbols.namesake ,Condensed Matter::Superconductivity ,symbols ,General Materials Science ,Quantum information ,van der Waals force ,0210 nano-technology ,Quantum - Abstract
A variety of quantum degrees of freedom, e.g., spins, valleys, and localized emitters, in atomically thin van der Waals materials have been proposed for quantum information applications, and they inevitably couple to phonons. Here, we directly measure the intrinsic optical phonon decoherence in monolayer and bulk MoS2 by observing the temporal evolution of the spectral interference of Stokes photons generated by pairs of laser pulses. We find that a prominent optical phonon mode E2g exhibits a room-temperature dephasing time of ∼7 ps in both the monolayer and bulk. This dephasing time extends to ∼20 ps in the bulk crystal at ∼15 K, which is longer than previously thought possible. First-principles calculations suggest that optical phonons decay via two types of three-phonon processes, in which a pair of acoustic phonons with opposite momentum are generated.
- Published
- 2021
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