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Observing the quantum behavior of light in an undergraduate laboratory

机译:在大学实验室观察光的量子行为

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While the classical, wavelike behavior of light (interference and diffraction) has been easily observed in undergraduate laboratories for many years, explicit observation of the quantum nature of light (i.e., photons) is much more difficult. For example, while well-known phenomena such as the photoelectric effect and Compton scattering strongly suggest the existence of photons, they are not definitive proof of their existence. Here we present an experiment, suitable for an undergraduate laboratory, that unequivocally demonstrates the quantum nature of light. Spontaneously downconverted light is incident on a beamsplitter and the outputs are monitored with single-photon counting detectors. We observe a near absence of coincidence counts between the two detectors-a result inconsistent with a classical wave model of light, but consistent with a quantum description in which individual photons are incident on the beamsplitter. More explicitly, we measured the, 2)(0) degree of second-order coherence between the outputs to be g((2)). =0.0177 +/- 0.0026, which violates the classical inequality g((2)) (0) greater than or equal to 1 by 377 standard deviations. (C) 2004 American Association of Physics Teachers.
机译:尽管多年来在大学实验室很容易观察到光的经典波状行为(干涉和衍射),但要明确观察光(即光子)的量子性质却要困难得多。例如,尽管众所周知的现象(例如光电效应和康普顿散射)强烈暗示了光子的存在,但它们并不是它们存在的确定证据。在这里,我们提出了一个适合本科实验室的实验,该实验明确地证明了光的量子本质。自发向下转换的光入射到分束器上,并用单光子计数检测器监视输出。我们观察到两个检测器之间几乎没有重合计数-结果与经典的光波模型不一致,但与单个光子入射到分束器上的量子描述相一致。更明确地说,我们将输出之间的二阶相干度2)(0)度量为g((2))。 = 0.0177 +/- 0.0026,这违反了经典不等式g((2))(0)大于或等于1乘以377个标准偏差。 (C)2004年美国物理教师协会。

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