论文标题
通过在微腔中强烈的激子 - 光子耦合对层 - 瓦利连贯性的光学操纵
Optical manipulation of layer-valley coherence via strong exciton-photon coupling in microcavities
论文作者
论文摘要
相干控制和操纵量子自由度(例如旋转)构成了新兴量子技术的基础。在这种情况下,在二维过渡金属二进制中发现的强大山谷自由度和相关的山谷伪源性是一个极具吸引力的平台。在这些系统中,甚至直到室温都可以观察到山谷偏振和连贯的叠加。控制山谷连贯性是实施山谷Qubit的重要组成部分。过去已经使用了大型磁场或高功率激光器来证明山谷相干状态的对照(初始化和旋转)。在这里,我们通过双层WS2中的山谷激子与微腔光子光子的强耦合来证明层 - valley相干性的控制,这是通过利用由于TE-TM裂解而在光腔中产生的假磁场。使用光子结构生成的假磁场可用于操纵激子 - 核酸杆菌,这是一种有吸引力的方法来控制光学响应,而无需大磁铁或高强度的光泵功率。
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 we demonstrate control of layer-valley coherence via strong coupling of valley excitons in bilayer WS2 to microcavity photons by exploiting the pseudomagnetic field arising in optical cavities owing to the TE-TM 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.