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Schrodinger uncertainty relations and physical features of correlated-coherent states

机译:薛定uncertainty不确定性关系和相关相干态的物理特征

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We show that the difference between the Schrodinger uncertainty relations (UR) and the Heisenberg UR is fundamental. We propose a modified version of stochastic mechanics that allows clearly demonstrating that the contributions from the anticommutator and the commutator to the Schrodinger UR are equally important. A classification of quantum states minimizing the Schrodinger UR at an arbitrary instant is proposed. We show that the correlation of the coordinate and momentum fluctuations in such correlated-coherent states (CCS) is largely determined by the contributions from not only the commutator but also the anticommutator of the corresponding operators. We demonstrate that the character of this correlation changes qualitatively in time from the antiphase correlation typical for the Heisenberg UR to the inphase correlation for which the contribution from the anticommutator is decisive. We comparatively analyze properties of a free microparticle and a quantum oscillator in CCS and show that the CCS correspond to traveling-standing de Broglie waves in both models.
机译:我们证明了薛定inger不确定性关系(UR)和海森堡UR之间的差异是根本的。我们提出了一种随机力学的改进版本,可以清楚地表明反换向器和换向器对Schrodinger UR的贡献同等重要。提出了在任意时刻使Schrodinger UR最小化的量子态分类。我们表明,在这种相关相干态(CCS)中,坐标和动量涨落的相关性在很大程度上取决于相应算符的换向器和反换向器的贡献。我们证明了这种相关性的特性在时间上从Heisenberg UR典型的反相相关性到同相相关性在时间上发生了质变,对于该相关性,来自反换向器的贡献至关重要。我们比较分析了CCS中的自由微粒和量子振荡器的性质,并表明CCS对应于两个模型中的常驻德布罗意波。

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