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On the self-interference in electron scattering: Copenhagen, Bohmian and geometrical interpretations of quantum mechanics

机译:关于电子散射的自干扰:哥本哈根,博姆安和量子力学几何解释

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Self-interference embodies the essence of the particle-wave formulation of quantum mechanics (QM). According to the Copenhagen interpretation of QM, self-interference by a double-slit requires a large transverse coherence of the incident wavepacket such that it covers the separation between the slits. Bohmian dynamics provides a first step in the separation of the particle wave character of matter by introducing deterministic trajectories guided by a pilot wave that follows the time-dependent Schrodinger equation. In this work, I present a new description of the phenomenon of self-interference using the geometrical formulation of QM introduced in Tavernelli (2016). In particular, this formalism removes the need for the concept of wavefunction collapse in the interpretation of the act of measurement i.e., the emergence of the classical world. The three QM formulations (Schrodinger, Bohmian, and geometrical) are applied to the description of the scattering of a free electron by a hydrogen atom and a double-slit. The corresponding interpretations of self-interference are compared and discussed. (C) 2018 Elsevier Inc. All rights reserved.
机译:自干扰体现了量子力学(QM)的粒子波制剂的本质。根据QM的哥本哈根解释,双缝的自干涉需要入射波皮上的大横向相干,使得它覆盖狭缝之间的分离。 Bohmian Dynamics通过引入由时间依赖的Schrodinger方程的试验波引导的确定性轨迹来提供物质的粒子波特性的第一步。在这项工作中,我在Tavernelli(2016)中引入了QM的几何制定,提出了对自干扰现象的新描述。特别是,这种形式主义消除了在古典世界的出现的测量行为中解释中的波消逝崩溃的概念。三个QM制剂(Schrodinger,Bohmian和几何)应用于通过氢原子和双狭缝的自由电子的散射的描述。比较和讨论相应的自干扰解释。 (c)2018年Elsevier Inc.保留所有权利。

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