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Photon blockade in an optical cavity with one trapped atom

机译:具有一个被俘获原子的光腔中的光子阻挡

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摘要

At low temperatures, sufficiently small metallic and semiconductor devices exhibit the 'Coulomb blockade' effect, in which charge transport through the device occurs on an electron-by-electron basis. For example, a single electron on a metallic island can block the flow of another electron if the charging energy of the island greatly exceeds the thermal energy. The analogous effect of 'photon blockade' has been proposed for the transport of light through an optical system; this involves photon–photon interactions in a nonlinear optical cavity. Here we report observations of photon blockade for the light transmitted by an optical cavity containing one trapped atom, in the regime of strong atom–cavity coupling. Excitation of the atom–cavity system by a first photon blocks the transmission of a second photon, thereby converting an incident poissonian stream of photons into a sub-poissonian, anti-bunched stream. This is confirmed by measurements of the photon statistics of the transmitted field. Our observations of photon blockade represent an advance over traditional nonlinear optics and laser physics, into a regime with dynamical processes involving atoms and photons taken one-by-one.
机译:在低温下,足够小的金属和半导体器件会表现出“库仑阻塞”效应,其中通过器件的电荷传输是逐个电子进行的。例如,如果金属岛上的单个电子能大大超过热能,则该电子会阻止另一个电子的流动。对于光通过光学系统的传输,已经提出了“光子阻挡”的类似作用。这涉及到非线性光学腔中的光子-光子相互作用。在这里,我们报告了在强原子-腔耦合的情况下,对于包含一个被俘获原子的光学腔所传输的光进行光子阻挡的观察结果。第一个光子激发原子-空穴系统会阻止第二个光子的传输,从而将入射的泊松式光子流转换为亚泊松式的反聚束流。这可以通过测量透射场的光子统计数据来确认。我们对光子阻挡的观察代表了相对于传统的非线性光学和激光物理学的进步,并进入了一个动态过程,其中涉及原子和光子一一对应的动态过程。

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