论文标题

用准1D频带抑制两波段超导体的波动

Suppression of fluctuations in a two-band superconductor with a quasi-1D band

论文作者

Shanenko, A. A., Saraiva, T. T., Vagov, A., Vasenko, A. S., Perali, A.

论文摘要

链状结构化的超导材料(例如A_2CR_3AS_3,具有A = K,RB,CS)具有单粒子状态的多播电子结构,在该状态下,在该状态下并存准二维(Q1D)和常规的较高维度较高的能量频段参与了聚集的超级超级超级凝结式凝结式凝结型浓度。当化学电位接近单波段超导体中Q1D带的边缘时,相应的平均场临界温度显着增加,但超导性被波动淬灭。然而,最近的研究表明,当Q1D频带与板间的库珀对转移耦合到更高的维度时,可以抑制热超导波动,以便所得的临界温度可以接近其平均场值。在目前的工作中,我们计算了两个波段超导体的平均场T_C0和波动偏移的T_C临界温度,其中Q1D带与具有较高维的频带的Q1D频段并存,并研究热波动如何对系统参数敏感。我们发现T_C在广泛的显微镜参数中接近T_C0,甚至高维频段的维度也不起着至关重要的作用。因此,通过频带之间的成对交换耦合抑制波动的筛选机制确实与大量的Q1D多型和超导材料相关,鼓励进一步的实验,旨在达到此类多型超导体中较大的临界温度。

Chain-like structured superconductive materials (such as A_2Cr_3As_3, with A = K, Rb, Cs) exhibit the multiband electronic structure of single-particle states, where coexisting quasi-one-dimensional (Q1D) and conventional higher-dimensional energy bands take part in the creation of the aggregate superconducting condensate. When the chemical potential approaches the edge of a Q1D band in a single-band superconductor, the corresponding mean-field critical temperature increases significantly but the superconductivity is quenched by fluctuations. However, recent investigation has revealed that when a Q1D band is coupled to a higher dimensional one by the interband Cooper-pair transfer, the thermal superconductive fluctuations can be suppressed so that the resulting critical temperature can be close to its mean-field value. In the present work, we calculate the mean-field T_c0 and fluctuation-shifted T_c critical temperatures for a two-band superconductor where a Q1D band coexists with a higher-dimensional band, and investigate how the thermal fluctuations are sensitive to the system parameters. We find that T_c is close to T_c0 in a wide range of microscopic parameters, and even the dimensionality of the higher-dimensional band does not play an essential role. Thus, the screening mechanism for suppressing fluctuations via the pair-exchange coupling between the bands is indeed relevant for a large class of Q1D multiband superconducting materials, encouraging further experiments aimed at reaching larger critical temperatures in such multiband superconductors.

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