一个误导性的命名约定:德西特“速子”标量场

IF 1.2 3区 物理与天体物理 Q3 PHYSICS, MULTIDISCIPLINARY
Jean-Pierre Gazeau, Hamed Pejhan
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引用次数: 0

摘要

我们重新审视了de Sitter (dS)“速子”标量场的概念,其特征是离散的负平方质量值,并通过严格的wigner启发的群论分析评估了它们的物理意义。这一观点表明,由于质量参数的原因,这些场通常被误解为内在不稳定,最好在dS群的幺正不可约表示(UIRs)的框架内理解。离散质谱在这个表示框架中自然产生,为dS相对论和量子场论之间的相互作用提供了深刻的见解。与他们误导性的命名相反,我们认为与这些场相关的“质量”参数缺乏内在的物理相关性,挑战了将其与物理不稳定性联系起来的传统假设。相反,任何感知到的不稳定性都源于对系统固有规范不变性的管理不当,而不是字段本身。对规范对称的适当处理,特别是通过Gupta-Bleuler形式,可以恢复这些场作为高度对称时空中的自由量子实体的预期特征。本研究旨在消除围绕dS“速子”场的误解,强调精确的术语和强大的理论工具在解决其独特特性方面的重要性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A Misleading Naming Convention: De Sitter ‘Tachyonic’ Scalar Fields

We revisit the concept of de Sitter (dS) ‘tachyonic’ scalar fields, characterized by discrete negative squared mass values, and assess their physical significance through a rigorous Wigner-inspired group-theoretical analysis. This perspective demonstrates that such fields, often misinterpreted as inherently unstable due to their mass parameter, are best understood within the framework of unitary irreducible representations (UIRs) of the dS group. The discrete mass spectrum arises naturally in this representation framework, offering profound insights into the interplay between dS relativity and quantum field theory. Contrary to their misleading nomenclature, we argue that the ‘mass’ parameter associated with these fields lacks intrinsic physical relevance, challenging traditional assumptions that link it to physical instability. Instead, any perceived instability originates from mismanagement of the system’s inherent gauge invariance rather than the fields themselves. A proper treatment of this gauge symmetry, particularly through the Gupta–Bleuler formalism, restores the expected characteristics of these fields as free quantum entities in a highly symmetric spacetime. This study seeks to dispel misconceptions surrounding dS ‘tachyonic’ fields, underscoring the importance of precise terminology and robust theoretical tools in addressing their unique properties.

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来源期刊
Foundations of Physics
Foundations of Physics 物理-物理:综合
CiteScore
2.70
自引率
6.70%
发文量
104
审稿时长
6-12 weeks
期刊介绍: The conceptual foundations of physics have been under constant revision from the outset, and remain so today. Discussion of foundational issues has always been a major source of progress in science, on a par with empirical knowledge and mathematics. Examples include the debates on the nature of space and time involving Newton and later Einstein; on the nature of heat and of energy; on irreversibility and probability due to Boltzmann; on the nature of matter and observation measurement during the early days of quantum theory; on the meaning of renormalisation, and many others. Today, insightful reflection on the conceptual structure utilised in our efforts to understand the physical world is of particular value, given the serious unsolved problems that are likely to demand, once again, modifications of the grammar of our scientific description of the physical world. The quantum properties of gravity, the nature of measurement in quantum mechanics, the primary source of irreversibility, the role of information in physics – all these are examples of questions about which science is still confused and whose solution may well demand more than skilled mathematics and new experiments. Foundations of Physics is a privileged forum for discussing such foundational issues, open to physicists, cosmologists, philosophers and mathematicians. It is devoted to the conceptual bases of the fundamental theories of physics and cosmology, to their logical, methodological, and philosophical premises. The journal welcomes papers on issues such as the foundations of special and general relativity, quantum theory, classical and quantum field theory, quantum gravity, unified theories, thermodynamics, statistical mechanics, cosmology, and similar.
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