物理
极化子
连贯性(哲学赌博策略)
激子
光子
凝聚态物理
相干控制
极化(电化学)
光子学
叠加原理
旋转
量子阱
光电子学
量子
激光器
光学
量子力学
化学
物理化学
作者
Mandeep Khatoniar,Nicholas Yama,Areg Ghazaryan,Sriram Guddala,Pouyan Ghaemi,Kausik Majumdar,Vinod M. Menon
标识
DOI:10.1002/adom.202202631
摘要
Abstract Coherent control and manipulation of quantum degrees of freedom such as spins forms the basis of emerging quantum technologies. In this context, the robust valley degree of freedom and the associated valley pseudospin found in two‐dimensional transition metal dichalcogenides is a highly attractive platform. Valley polarization and coherent superposition of valley states have been observed in these systems even up to room temperature. Control of valley coherence is an important building block for the implementation of valley qubit. Large magnetic fields or high‐power lasers have been used in the past to demonstrate the control (initialization and rotation) of the valley coherent states. Here, the control of layer–valley coherence via strong coupling of valley excitons in bilayer WS 2 to microcavity photons is demonstrated by exploiting the pseudomagnetic field arising in optical cavities owing to the transverse electric–transverse magnetic (TE–TM)mode splitting. The use of photonic structures to generate pseudomagnetic fields which can be used to manipulate exciton‐polaritons presents an attractive approach to control optical responses without the need for large magnets or high‐intensity optical pump powers.
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