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Published on: August 2, 2019
Oscillatory magnetic field-dependent critical temperatures of ultraclean Type-I superconductors
Aiying Zhao1, Richard A Klemm2, Qiang Gu1
1Institute of Theoretical Physics, University of Science and Technology Beijing, Beijing 100083, People's Republic of China.
Abstract:
The influence of the Zeeman energy and the Landau levels (LLs) arising from an applied magnetic fieldBupon the critical temperatureTis studied using a fully quantum mechanical method within the framework of the Bardeen-Cooper-Schrieffer (BCS) theory of superconductivity that forms from an ultraclean metal. As in semiclassical treatments, we found that two electrons can form Cooper pairs with opposite spins and momenta in theBdirection while either in the same or in neighboring LLs. However, the fully quantum mechanical treatment of the LLs causesT(B) for electrons paired on the same LL to oscillate about the critical temperature of the BCS theory, similar to that of the de Haas-van Alphen effect. The Zeeman energy causesT(B) to decrease in an oscillatory fashion with increasingBfor electrons paired either on the same or on neighboring LLs. For the Zeemang > 1, pairing on neighboring LLs results in the highestT(B). Forg < 1, pairing on the same LLs gives the highestT(B). In addition,T(B) for electrons paired on neighboring LLs exhibits an apparent symmetry aroundg = 2, as the oscillatory critical temperature behaviors are nearly identical forg=2±δ.
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