Composite particles with minimum uncertainty in spacetime

Carolyn E. Wood, M. Zych
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引用次数: 1

Abstract

Composite particles---atoms, molecules, or microspheres---are unique tools for testing joint quantum and general relativistic effects, macroscopic limits of quantum mechanics, and searching for new physics. However, all studies of the free propagation of these particles find that they delocalise into separate internal energy components, destroying their spatial coherence. This renders them unsuitable for experimental applications, as well as theoretical studies where they are used as idealised test masses or clocks. Here we solve this problem by introducing a new class of states with minimal uncertainty in space-time that fully overcome the delocalisation. The relevant physics comes from minimising the uncertainty between position and velocity, rather than position and momentum, while directly accounting for mass as an operator. Our results clarify the nature of composite particles, providing a currently missing theoretical tool with direct relevance for studies of joint foundations of quantum and relativistic phenomena, which removes a roadblock that could limit near-future quantum tests using composite particles.
具有最小时空不确定性的复合粒子
复合粒子——原子、分子或微球——是测试量子和广义相对论联合效应、量子力学的宏观极限和寻找新物理学的独特工具。然而,所有关于这些粒子自由传播的研究都发现,它们会离域成为单独的内部能量分量,从而破坏它们的空间相干性。这使得它们不适合实验应用,也不适合作为理想测试质量或时钟的理论研究。在这里,我们通过引入一种新的状态来解决这个问题,这种状态在时空中具有最小的不确定性,完全克服了离域。相关的物理学来自于最小化位置和速度之间的不确定性,而不是位置和动量之间的不确定性,同时直接将质量作为一个算子。我们的研究结果澄清了复合粒子的性质,为量子和相对论现象的联合基础研究提供了一个目前缺失的理论工具,这消除了可能限制近期使用复合粒子进行量子测试的障碍。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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