Time-symmetric quantization of relativistic fields. 1. Complex fields, massless gauge fields and gravitons

Zahid Zakir
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Abstract

In the standard formulation of quantum field theory (QFT), where there are only positive energy particles and antiparticles, the energy and charge of the vacuum diverge, which, due to the existence of gravity, leads to the inconsistency of the theory (cosmological constant problem). In the article, it is shown that in the Stueckelberg-Feynman (SF) interpretation, where antiparticles are described as negative energy particles moving backward in time, the zero-point energy and zero-point charge of vacuum of complex fields are absent and there is no cosmological constant problem. However, until now it was believed that the SF interpretation leads to negative probabilities and incompatible with QFT. In the article, it is presented a new formulation of QFT on the basis of the SF interpretation in the form of time-symmetric quantization (TSQ), where the probability of states is positive. In TSQ, the consequences of the SF interpretation are taken into account consecutively and it is shown that: a) the negative sign of the norm of states only changes the sign of the wave function, and not the probabilities; b) the expression of backward in time integrals through the forward in time integrals changes sign; c) the time ordering of the operators is symmetric in time and writing them through the usual ordering leads to the standard diagram technique. For this reason, TSQ correctly describes the known observable effects. In TSQ, the results of unification models change, in particular, a) there is no zero-point energy even with broken supersymmetry between complex fields; b) there is no zero-point energy of modes in string theories, which allows to include gravity, but there is no a conformal anomaly and the dimension of space can be arbitrary.
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相对论场的时间对称量子化。1. 复杂场,无质量规范场和引力子
在量子场论(QFT)的标准表述中,只有正能量粒子和反粒子,真空的能量和电荷发散,由于引力的存在,导致理论不一致(宇宙学常数问题)。在Stueckelberg-Feynman (SF)解释中,将反粒子描述为逆时间运动的负能量粒子,不存在复场真空的零点能量和零点电荷,不存在宇宙学常数问题。然而,到目前为止,人们认为SF解释导致负概率,与QFT不相容。本文以时间对称量化(TSQ)的形式,在SF解释的基础上提出了一种新的QFT公式,其中状态的概率为正。在TSQ中,连续考虑了SF解释的结果,结果表明:a)状态范数的负号只改变波函数的符号,而不改变概率;B)后向时间积分的表达式通过前向时间积分改变符号;C)操作符的时间顺序在时间上是对称的,通过通常的顺序来书写它们会导致标准图技术。因此,TSQ正确地描述了已知的可观测效应。在TSQ中,统一模型的结果发生了变化,特别是:a)即使在复杂场之间的超对称破缺的情况下也不存在零点能量;B)弦理论中不存在允许包含重力的模式零点能量,但不存在共形异常,空间维度可以是任意的。
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