How Dirac's Seminal Contributions Pave the Way for Comprehending Nature's Deeper Designs

Q1 Arts and Humanities
Quanta Pub Date : 2019-12-17 DOI:10.12743/quanta.v8i1.96
M. Bhaumik
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引用次数: 4

Abstract

Credible reasons are presented to reveal that many of the lingering century old enigmas, surrounding the behavior of at least an individual quantum particle, can be comprehended in terms of an objectively real specific wave function. This wave function is gleaned from the single particle energy-momentum eigenstate offered by the theory of space filling universal quantum fields that is an inevitable outcome of Dirac's pioneering masterpiece. Examples of these well-known enigmas are wave particle duality, the de Broglie hypothesis, the uncertainty principle, wave function collapse, and predictions of measurement outcomes in terms of probability instead of certainty. Paul Dirac successfully incorporated special theory of relativity into quantum mechanics for the first time. This was accomplished through his ingenious use of matrices that allowed the equations of motion to maintain the necessary first order time derivative feature necessary for positive probability density. The ensuing Dirac equation for the electron led to the recognition of the mystifying quantized spin and magnetic moment as intrinsic properties in contrast to earlier ad hoc assumptions. The solution of his relativistic equation for the hydrogen atom produced results in perfect agreement with experimental data available at the time. The most far reaching prediction of the celebrated Dirac equation was the totally unexpected existence of anti-particles, culminating in the eventual development of the quantum field theory of the Standard Model that reveals the deepest secrets of the universe known to date. Quanta 2019; 8: 88–100.
狄拉克的开创性贡献如何为理解自然的深层设计铺平道路
有可信的理由表明,围绕至少一个单个量子粒子的行为,许多挥之不去的百年谜团可以用客观真实的特定波函数来理解。这个波函数是从空间填充普遍量子场理论提供的单粒子能量动量本征态中收集的,这是狄拉克开创性杰作的必然结果。这些众所周知的谜团的例子有波粒对偶性、德布罗意假说、不确定性原理、波函数坍塌以及用概率而不是确定性来预测测量结果。保罗·狄拉克首次成功地将狭义相对论纳入量子力学。这是通过他巧妙地使用矩阵来实现的,矩阵允许运动方程保持正概率密度所必需的一阶时间导数特征。随后的电子狄拉克方程使人们认识到,与早期的特设假设相比,神秘的量子化自旋和磁矩是固有性质。他的氢原子相对论方程的求解结果与当时的实验数据完全一致。著名的狄拉克方程最深远的预测是反粒子的完全出乎意料的存在,最终发展出了标准模型的量子场论,揭示了迄今为止已知的宇宙最深的秘密。广达2019;8:88–100。
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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来源期刊
Quanta
Quanta Arts and Humanities-History and Philosophy of Science
CiteScore
1.30
自引率
0.00%
发文量
5
审稿时长
12 weeks
期刊介绍: Quanta is an open access academic journal publishing original research and review articles on foundations of quantum mechanics, mathematical physics and philosophy of science.
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