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Optomechanical measurement of photon spin angular momentum and optical torque in integrated photonic devices

机译:集成光子器件中光子自旋角动量和光转矩的光机械测量

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摘要

Photons carry linear momentum and spin angular momentum when circularly or elliptically polarized. During light-matter interaction, transfer of linear momentum leads to optical forces, whereas transfer of angular momentum induces optical torque. Optical forces including radiation pressure and gradient forces have long been used in optical tweezers and laser cooling. In nanophotonic devices, optical forces can be significantly enhanced, leading to unprecedented optomechanical effects in both classical and quantum regimes. In contrast, to date, the angular momentum of light and the optical torque effect have only been used in optical tweezers but remain unexplored in integrated photonics. We demonstrate the measurement of the spin angular momentum of photons propagating in a birefringent waveguide and the use of optical torque to actuate rotational motion of an optomechanical device. We show that the sign and magnitude of the optical torque are determined by the photon polarization states that are synthesized on the chip. Our study reveals the mechanical effect of photon’s polarization degree of freedom and demonstrates its control in integrated photonic devices. Exploiting optical torque and optomechanical interaction with photon angular momentum can lead to torsional cavity optomechanics and optomechanical photon spin-orbit coupling, as well as applications such as optomechanical gyroscopes and torsional magnetometry.
机译:当圆或椭圆极化时,光子携带线性动量和自旋角动量。在光-物质相互作用期间,线性动量的传递导致光学力,而角动量的传递引起光学转矩。包括辐射压力和梯度力在内的光学力长期以来一直用于光镊和激光冷却中。在纳米光子器件中,可以显着增强光学力,从而在经典和量子态下都产生空前的光机械效应。相比之下,迄今为止,光的角动量和光学转矩效应仅在光学镊子中使用,而在集成光子学中尚未探索。我们演示了在双折射波导中传播的光子的自旋角动量的测量以及使用光转矩来驱动光机械设备的旋转运动。我们表明,光转矩的符号和大小由芯片上合成的光子偏振态决定。我们的研究揭示了光子偏振自由度的机械效应,并证明了其在集成光子器件中的控制。利用光扭矩和光机械与光子角动量的相互作用可以导致扭转腔光机械和光机械自旋轨道耦合,以及诸如光机械陀螺仪和扭转磁力计的应用。

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