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Engineering spin-orbit synthetic Hamiltonians in liquid-crystal optical cavities

机译:在液晶光学腔中工程自旋合成人工哈密顿量

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Spin-orbit interactions lead to distinctive functionalities in photonic systems. They exploit the analogy between the quantum mechanical description of a complex electronic spin-orbit system and synthetic Hamiltonians derived for the propagation of electromagnetic waves in dedicated spatial structures. We realize an artificial Rashba-Dresselhaus spin-orbit interaction in a liquid crystal-filled optical cavity. Three-dimensional tomography in energy-momentum space enabled us to directly evidence the spin-split photon mode in the presence of an artificial spin-orbit coupling. The effect is observed when two orthogonal linear polarized modes of opposite parity are brought near resonance. Engineering of spin-orbit synthetic Hamiltonians in optical cavities opens the door to photonic emulators of quantum Hamiltonians with internal degrees of freedom.
机译:自旋轨道相互作用导致光子系统具有独特的功能。他们利用了复杂的电子自旋轨道系统的量子力学描述和为在专用空间结构中传播电磁波而导出的合成哈密顿量之间的类比。我们在充满液晶的光学腔中实现了人工的Rashba-Dresselhaus自旋轨道相互作用。能量动量空间中的三维层析成像使我们能够直接证明存在人工自旋轨道耦合的情况下的自旋分裂光子模式。当两个相对奇偶校验的正交线性偏振模接近共振时,会观察到这种效果。光腔中自旋轨道合成哈密顿量的工程设计为具有内部自由度的量子哈密顿量的光子仿真器打开了大门。

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