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处于边带分辨区域的二维磷化镓光机械晶体。

Two-dimensional gallium phosphide optomechanical crystal in the resolved-sideband regime.

作者信息

Tamaki Sho, Kristensen Mads Bjerregaard, Martel Théo, Braive Rémy, Schliesser Albert

出版信息

Opt Express. 2024 Dec 30;32(27):48500-48508. doi: 10.1364/OE.540244.

Abstract

Faithful quantum state transfer between telecom photons and microwave frequency mechanical oscillations necessitate a fast conversion rate and low thermal noise. Two-dimensional (2D) optomechanical crystals (OMCs) are favorable candidates that satisfy those requirements. 2D OMCs enable sufficiently high mechanical frequency (1∼10 GHz) to make the resolved-sideband regime achievable, a prerequisite for many quantum protocols. It also supports higher thermal conductance than 1D structures, mitigating the parasitic laser absorption heating. Furthermore, gallium phosphide (GaP) is a promising material choice thanks to its large electronic bandgap of 2.26 eV, which suppresses two-photon absorption, and high refractive index = 3.05 at the telecom C-band, leading to a high vacuum optomechanical coupling rate. Here, we fabricate and characterize a 2D OMC made of GaP. We realize a high optical -factor of 7.9 × 10, corresponding to a linewidth /2 = 2.5 GHz at the telecom frequency 195.6 THz. This optical mode couples to several mechanical modes, whose frequencies all exceed the cavity linewidth. The most strongly coupled mode oscillates at 7.7 GHz, more than 3 times the optical linewidth, while achieving a substantial vacuum optomechanical coupling rate /2 = 450 kHz. This makes the platform a promising candidate for a long-lived, deterministic quantum memory for telecom photons at low temperatures.

摘要

实现电信光子与微波频率机械振荡之间的忠实量子态转移需要快速的转换速率和低的热噪声。二维(2D)光机械晶体(OMC)是满足这些要求的理想候选者。二维光机械晶体能够实现足够高的机械频率(1∼10 GHz),从而实现边带分辨 regime,这是许多量子协议的先决条件。它还支持比一维结构更高的热导率,减轻了寄生激光吸收加热。此外,磷化镓(GaP)是一种很有前景的材料选择,因为其具有2.26 eV的大电子带隙,可抑制双光子吸收,并且在电信C波段具有3.05的高折射率,导致高的真空光机械耦合率。在此,我们制备并表征了一种由GaP制成的二维光机械晶体。我们实现了7.9×10的高光品质因数,对应于电信频率195.6 THz处的线宽/2 = 2.5 GHz。这种光学模式与几种机械模式耦合,其频率均超过腔线宽。耦合最强的模式以7.7 GHz振荡,是光学线宽的3倍多,同时实现了可观的真空光机械耦合率/2 = 450 kHz。这使得该平台成为低温下用于电信光子的长寿命、确定性量子存储器的有前途的候选者。

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