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Symmetric and antisymmetric forms of the Pauli master equation

机译:Pauli Master方程的对称和反对称形式

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When applied to matter and antimatter states, the Pauli master equation (PME) may have two forms: time-symmetric, which is conventional, and time-antisymmetric, which is suggested in the present work. The symmetric and antisymmetric forms correspond to symmetric and antisymmetric extensions of thermodynamics from matter to antimatter - this is demonstrated by proving the corresponding H-theorem. The two forms are based on the thermodynamic similarity of matter and antimatter and differ only in the directions of thermodynamic time for matter and antimatter (the same in the time-symmetric case and the opposite in the time-antisymmetric case). We demonstrate that, while the symmetric form of PME predicts an equibalance between matter and antimatter, the antisymmetric form of PME favours full conversion of antimatter into matter. At this stage, it is impossible to make an experimentally justified choice in favour of the symmetric or antisymmetric versions of thermodynamics since we have no experience of thermodynamic properties of macroscopic objects made of antimatter, but experiments of this kind may become possible in the future.
机译:当申请到物质和反物质状态时,Pauli主架构(PME)可以具有两种形式:时间对称,即常规,并且时间反对称,在本作中建议。对称和反对称形式对应于从物质到解反物质的对称和反对称延伸 - 通过证明相应的H定理来证明这一点。这两种形式基于物质和反物质的热力学相似性,并且仅在热力学时间的方向上不同于物质和反物质的方向(时对称案例中的相同,在时对手情况下相反)。我们证明,虽然PME的对称形式预测物质和反物质之间的平衡,但是PME的反对称形式融合了反物质的全部转换。在这个阶段,无法对对称或反对称版本的热力学进行实验性合理的选择,因为我们没有由反物质制成的宏观物体的热力学性质的经验,但是将来可能成为可能的实验。

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