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Quantum non-locality vs. quasi-local measurements in the conditions of the Aharonov-Bohm effect

机译:Quantum非局部性与准局部测量在AHARONOV-BOHM效果的条件下

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Theoretical explanation of the Meissner effect involves proportionality between current density and vector potential, which has many deep consequences. As noticed by de Gennes, superconductors in a magnetic field "find an equilibrium state where the sum of kinetic and magnetic energies is minimum" and this state "corresponds to the expulsion of the magnetic field". This statement still leaves an open question:from which source is the superconducting current acquiring its kinetic energy? A na?ve answer, perhaps, is from the energy of the magnetic field. However, one can consider situations (Aharonov-Bohm effect), where the classical magnetic field is locally absent in the area occupied by the current. Experiments demonstrate that despite the local absence of the magnetic field, current is, nevertheless, building up. From what source is it acquiring its energy then? Locally, only a vector potential is present. How does the vector potential facilitate the formation of the current? Is the current formation a result of a truly non-local quantum action, or does the local action of the vector potential have experimental consequences? We discuss possible experiments with a hybrid normal-metal superconductor circuitry, which can clarify this puzzling situation. Experimental answers will be important for further developments.
机译:Meissner效应的理论解释涉及电流密度与载体电位之间的比例,这具有许多深刻的后果。如De Gennes所注意到,磁场中的超导体“找到动力学和磁能的总和最小”并且该状态“对应于磁场的排出”。该声明仍然留下一个开放问题:从哪个来源是获取其动能的超导电流?也许是Na ve答案来自磁场的能量。然而,人们可以考虑情况(AHARONOV-BOHM效应),其中经典磁场在由电流占据的区域中局部不存在。实验表明,尽管局部没有磁场,但是,仍然是建立的电流。从什么来源是从哪个来源获得它的能量?在本地,仅存在矢量电位。矢量潜力如何有助于形成当前的?目前的形成是真正的非局部量子作用的结果,或者矢量潜力的局部作用是否具有实验后果?我们讨论了混合常金属超导电路的可能实验,可以阐明这种令人费解的情况。实验答案对于进一步发展是重要的。

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