The Wave-Particle Duality—Does the Concept of Particle Make Sense in Quantum Mechanics? Should We Ask the Second Quantization?

Sofia D. Wechsler
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引用次数: 6

Abstract

The quantum object is in general considered as displaying both wave and particle nature. By particle is understood an item localized in a very small volume of the space, and which cannot be simultaneously in two disjoint regions of the space. By wave, to the contrary, is understood a distributed item, occupying in some cases two or more disjoint regions of the space. The quantum formalism did not explain until today the so-called “collapse” of the wave-function, i.e. the shrinking of the wave-function to one small region of the space, when a macroscopic object is encountered. This seems to happen in “which-way” experiments. A very appealing explanation for this behavior is the idea of a particle, localized in some limited part of the wave-function. The present article challenges the concept of particle. It proves in the base of a variant of the Tan, Walls and Collett experiment, that this concept leads to a situation in which the particle has to be simultaneously in two places distant from one another—situation that contradicts the very definition of a particle. Another argument is based on a modified version of the Afshar experiment, showing that the concept of particle is problematic. The concept of particle makes additional difficulties when the wave-function passes through fields. An unexpected possibility to solve these difficulties seems to arise from the cavity quantum electrodynamics studies done recently by S. Savasta and his collaborators. It involves virtual particles. One of these studies is briefly described here. Though, experimental results are needed, so that it is too soon to conclude whether it speaks in favor, or against the concept of particle.
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波粒对偶性——粒子的概念在量子力学中有意义吗?我们应该问第二量化吗?
量子物体通常被认为同时表现出波和粒子的性质。粒子被理解为一个位于非常小体积空间中的项目,并且不能同时位于空间的两个不相交区域中。相反,波浪被理解为分布式项目,在某些情况下占据空间的两个或多个不相交区域。直到今天,量子形式主义才解释波函数的所谓“坍塌”,即当遇到宏观物体时,波函数收缩到空间的一个小区域。这似乎发生在“哪种方式”的实验中。对这种行为的一个非常有吸引力的解释是粒子的概念,它局限于波函数的某个有限部分。这篇文章挑战了粒子的概念。它在Tan、Walls和Collett实验的一个变体的基础上证明,这一概念导致了粒子必须同时位于两个相距遥远的地方的情况——这种情况与粒子的定义相矛盾。另一个论点是基于阿夫沙尔实验的修改版本,表明粒子的概念是有问题的。当波函数通过场时,粒子的概念会带来额外的困难。S.Savasta和他的合作者最近进行的腔量子电动力学研究似乎产生了解决这些困难的一种意想不到的可能性。它涉及虚拟粒子。其中一项研究在这里简要介绍。尽管如此,实验结果还是需要的,所以现在下结论是赞成还是反对粒子的概念还为时过早。
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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