论文标题
巨型量子现象。对物理解释的批判性研究
Megascopic Quantum Phenomena. A Critical Study of Physical Interpretations
论文作者
论文摘要
提供了巨型重新验证,提供当前量子理论中当前不一致和现有矛盾的响应和决议。作为这项研究的核心,我们为分子和固体的量子场公式提供了巨石定理的独立证明。与声子一起出现了两种新类型的准颗粒:rotons and Translons。与Lorentz协方差完全类似,结合了空间和时间坐标,需要一个新的协方差,将内部和外部自由度结合在一起,而无需明确分开通常适用于古典和量子配方的质量中心。关于金石模式和损坏对称性之间缺乏简单对应关系的普遍接受的观点,具有重大的后果:模棱两可的BCS理论以及随后的Higgs机制。与标准的量子关系相比,经典自发对称性破坏的原型,即墨西哥帽子,即Jahn-Teller效应,超导性或HIGGS机制,成为差异。简而言之,对称性破碎状态具有微观因果原因,但是它们之间的过渡具有目的论成分。量子力学和现场理论中重力问题问题的不同处理意味着在多体水平上的第二种bohr互补性为所有基本的显微镜量子公理的巨型级别代表打开了大门,并进一步读取了针对巨型质量量子现象的进一步读数,而没有微观的化学效应。 Einstein-de Haas效应,超导性 - 散发性和脆性断裂。
A megascopic revalidation is offered providing responses and resolutions of current inconsistencies and existing contradictions in present-day quantum theory. As the core of this study we present an independent proof of the Goldstone theorem for a quantum field formulation of molecules and solids. Along with phonons two types of new quasiparticles appear: rotons and translons. In full analogy with Lorentz covariance, combining space and time coordinates, a new covariance is necessary, binding together the internal and external degrees of freedom, without explicitly separating the centre-of-mass, which normally applies in both classical and quantum formulations. The generally accepted view regarding the lack of a simple correspondence between the Goldstone modes and broken symmetries, has significant consequences: an ambiguous BCS theory as well as a subsequent Higgs mechanism. The application of the archetype of the classical spontaneous symmetry breaking, i.e. the Mexican hat, as compared to standard quantum relations, i.e. the Jahn-Teller effect, superconductivity or the Higgs mechanism, becomes a disparity. In short, symmetry broken states have a microscopic causal origin, but transitions between them have a teleological component. The different treatments of the problem of the centre of gravity in quantum mechanics and in field theories imply a second type of Bohr complementarity on the many-body level opening the door for megascopic representations of all basic microscopic quantum axioms with further readings for teleonomic megascopic quantum phenomena, which have no microscopic rationale: isomeric transitions, Jahn-Teller effect, chemical reactions, Einstein-de Haas effect, superconductivity-superfluidity, and brittle fracture.