纳米光子系统中虚光子的二次量子化

A. Gritsunov, Igor Bondarenko, Oleksiy Pashchenko, Hennadii Bendeberya, Volodimir Karnaushenko, M. Kopot
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引用次数: 0

摘要

讨论了纳米光子系统量子电动力学的基本问题,对纳米技术的进一步发展至关重要。以分布参数(NOSs)作为“实”而非“概率”的自然振荡系统假设,德布罗意物质波是自然振荡系统(TNOS)理论的基础。TNOS本质上是一个四维理论;作用,而不是动量-能量,被认为是引起NOSs激发的宇宙的主要保守和量子化的物理值。分别假定作用的积极部分和消极部分的守恒定律。费米子NOS波包(“粒子”)的空间局域化和海森堡的测不准原理都被认为是费米子NOS作用在玻色子NOS的多个自由度上随机“扩散”的结果(根据统计物理的一般定律)。费米子的库仑势和自身(自旋)磁矩的物理起源也被认为是传播在玻色子NOS上的作用。费米子波包的四维时空结构以及玻色子NOS(虚光子)各自“强制”特征模的作用估计是本文的主题。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
On the Second Quantization of Virtual Photons in Nanophotonic Systems
Fundamental issues of quantum electrodynamics of nanophotonic systems essential for further progress of nanotechnology are considered. Hypothesis of natural oscillatory systems with distributed parameters (NOSs) as bases for “real”, not “probabilistic”, de Broglie matter waves underlies the theory of natural oscillatory systems (TNOS). TNOS is a 4D theory in essence; the action, not momentum-energy, is regarded as a primary conservative and quantized physical value of Universe causing excitation of NOSs. Conservation laws individually for the positive and the negative parts of action are supposed. The spatial localization of fermion NOS wave packets (“particles”) and Heisenberg's uncertainty principle both are supposed to be results of a stochastic “spread” of fermion NOS action over multiple degrees of freedom of boson NOSs (according to the general laws of statistical physics). The physical origin of both Coulomb potential and own (spin) magnetic moment of fermions is considered to be also the action spread over boson NOS. A 4D spatio-temporal structure of fermion wave packet conjointly with estimation of actions of respective “forced” eigenmodes of boson NOS (virtual photons) is the subject of this paper.
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