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Decoherence of matter waves by thermal emission of radiation

机译:辐射热发射引起的物质波去相干

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Emergent quantum technologies have led to increasing interest in decoherence-the processes that limit the appearance of quantum effects and turn them into classical phenomena. One important cause of decoherence is the interaction of a quantum system with its environment, which 'entangles' the two and distributes the quantum coherence over so many degrees of freedom as to render it unobservable. Decoherence theory has been complemented by experiments using matter waves coupled to external photons or molecules, and by investigations using coherent photon states, trapped ions and electron interferometers. Large molecules are particularly suitable for the investigation of the quantum-classical transition because they can store much energy in numerous internal degrees of freedom; the internal energy can be converted into thermal radiation and thus induce decoherence. Here we report matter wave interferometer experiments in which C_(70) molecules lose their quantum behaviour by thermal emission of radiation. We find good quantitative agreement between our experimental observations and microscopic decoherence theory. Decoherence by emission of thermal radiation is a general mechanism that should be relevant to all macroscopic bodies.
机译:新兴的量子技术已引起人们对去相干的越来越多的兴趣,该过程限制了量子效应的出现并将其转变为经典现象。退相干的一个重要原因是量子系统与其周围环境的相互作用,这种相互作用“纠缠”了两者,并在许多自由度上分布了量子相干,以致于无法观察到。通过使用与外部光子或分子耦合的物质波进行的实验以及使用相干光子态,俘获离子和电子干涉仪进行的研究,对相干理论进行了补充。大分子特别适合研究量子经典跃迁,因为它们可以在许多内部自由度中存储大量能量;内部能量可以转换成热辐射,从而引起退相干。在这里,我们报告物质波干涉仪实验,其中C_(70)分子由于辐射的热发射而失去了量子行为。我们发现我们的实验观察结果和微观相干理论之间存在良好的定量一致性。由热辐射的发射引起的去相干是与所有宏观物体有关的一般机制。

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