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The Simplest Double Slit: Interference and Entanglement in Double Photoionization of H_2

机译:最简单的双缝:H_2双重光电离中的干扰和纠缠

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The wave nature of particles is rarely observed, in part because of their very short de Broglie wavelengths in most situations. However, even with wavelengths close to the size of their surroundings, the particles couple to their environment (for example, by gravity, Coulomb interaction, or thermal radiation). These couplings shift the wave phases, often in an uncontrolled way, and the resulting decoherence, or loss of phase integrity, is thought to be a main cause of the transition from quantum to classical behavior. How much interaction is needed to induce this transition? Here we show that a photoelectron and two protons form a minimum particle/slit system and that a single additional electron constitutes a minimum environment. Interference fringes observed in the angular distribution of a single electron are lost through its Coulomb interaction with a second electron, though the correlated momenta of the entangled electron pair continue to exhibit quantum interference.
机译:很少观察到粒子的波动特性,部分原因是在大多数情况下它们的de Broglie波长非常短。但是,即使波长接近其周围环境的大小,粒子也会耦合到其环境(例如,通过重力,库仑相互作用或热辐射)。这些耦合通常以不受控制的方式移动波相位,并且由此导致的退相干或相位完整性损失被认为是从量子行为向经典行为转变的主要原因。需要多少互动才能诱发这种转变?在这里,我们表明光电子和两个质子形成一个最小的粒子/狭缝系统,并且单个附加电子构成一个最小的环境。尽管单个电子的角度分布中观察到的干涉条纹通过其与第二个电子的库仑相互作用而消失,但是纠缠的电子对的相关动量继续表现出量子干涉。

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