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Electrically Tuneable Exciton-Polaritons through Free Electron Doping in Monolayer WS_2 Microcavities

机译:通过单层WS_2微腔中的自由电子掺杂实现电调谐的激子-紫罗兰酮

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摘要

This study demonstrates control over light-matter coupling at room temperature combining a field effect transistor (FET) with a tuneable optical microcavity. This microcavity FET comprises a monolayer tungsten disulfide, WS2, semiconductor which is transferred onto a hexagonal boron nitride flake that acts as a dielectric spacer in the microcavity, and as an electric insulator in the FET. In this tuneable system, strong coupling between excitons in the monolayer WS2 and cavity photons can be tuned by controlling the cavity length, which is achieved with excellent stability, allowing to choose from the second to the fifth order of the cavity modes. Once the strong coupling regime is achieved, the oscillator strength of excitons is then modified in the semiconductor material by modifying the free electron carrier density in the conduction band of the WS2. This enables strong Coulomb repulsion between free electrons, which reduces the oscillator strength of excitons until the Rabi splitting completely disappears. The charge carrier density is controlled from 0 up to 3.2 x 10(12) cm(-2), and over this range the Rabi splitting varies from a maximum value that depends on the cavity mode chosen, down to zero, so the system spans the strong to weak coupling regimes.
机译:这项研究证明了在室温下结合场效应晶体管(FET)和可调光微腔对光-质耦合的控制。该微腔FET包含单层二硫化钨WS2半导体,该半导体转移到六方氮化硼薄片上,该薄片用作微腔中的介电间隔物,并在FET中用作电绝缘体。在此可调谐系统中,可以通过控制腔长度来调节单层WS2中激子与腔光子之间的强耦合,这具有出色的稳定性,可以从腔模式的二阶到五阶进行选择。一旦实现了强大的耦合机制,激子的振荡器强度就可以通过改变WS2导带中的自由电子载流子密度来改变半导体材料中的激子强度。这样可以在自由电子之间形成强大的库仑排斥力,从而降低激子的振子强度,直到拉比分裂完全消失为止。电荷载流子密度的控制范围是从0到3.2 x 10(12)cm(-2),在此范围内,拉比分裂的最大值从取决于所选择的腔模的最大值变化到零,因此系统跨度强耦合机制到弱耦合机制。

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