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首页> 外文期刊>Nature Communications >Nanoscale nonreciprocity via photon-spin-polarized stimulated Raman scattering
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Nanoscale nonreciprocity via photon-spin-polarized stimulated Raman scattering

机译:通过光子 - 旋转偏振刺激拉曼散射的纳米级非防波

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摘要

Time reversal symmetry stands as a fundamental restriction on the vast majority of optical systems and devices. The reciprocal nature of Maxwell's equations in linear, time-invariant media adds complexity and scale to photonic diodes, isolators, circulators and also sets fundamental efficiency limits on optical energy conversion. Though many theoretical proposals and low frequency demonstrations of nonreciprocity exist, Faraday rotation remains the only known nonreciprocal mechanism that persists down to the atomic scale. Here, we present photon-spin-polarized stimulated Raman scattering as a new nonreciprocal optical phenomenon which has, in principle, no lower size limit. Exploiting this process, we numerically demonstrate nanoscale nonreciprocal transmission of free-space beams at near-infrared frequencies with a 250?nm thick silicon metasurface as well as a fully-subwavelength plasmonic gap nanoantenna. In revealing all-optical spin-splitting, our results provide a foundation for compact nonreciprocal communication and computing technologies, from nanoscale optical isolators and full-duplex nanoantennas to topologically-protected networks.
机译:时间反转对称性是对绝大多数光学系统和设备的基本限制。 Maxwell的线性方程的互惠性质,时间不变介质在光子二极管,隔离器,循环器中增加了复杂性和比例,并对光学能转换设定了基本效率限制。尽管存在许多理论提出和不侵略性的低频演示,但是法拉第旋转仍然是唯一持续到原子尺度的已知的非探测机制。在这里,我们将光子 - 旋转偏振刺激的拉曼散射作为一种新的非探测光学现象,原则上没有较小的尺寸限制。利用这一过程,我们在近红外频率下用250×nm厚的硅元质表面以及完全亚主波动间隙纳米纳米纳米纳米纳米纳米纳米纳米纳米纳米纳米纳米纳米纳米纳米纳米纳米纳米纳米纳米·纳米纳米纳米纳米纳米纳米·纳米纳米纳米·纳米纳米纳米载纳米横向纳米张纳米透视自由空间梁的纳米级非探测器。在揭示所有光学旋转分裂时,我们的结果为紧凑型非渗透通信和计算技术提供了一种基础,从纳米级光学隔离器和全双工纳米纳米到拓扑保护网络。

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