论文标题
库珀对在自场面条件下超导平板的轨迹
Cooper pair trajectories in superconducting slab at self-field conditions
论文作者
论文摘要
无耗散电流流量是超导体最迷人,最重要的特性之一。在没有外部磁场的情况下,无限长的矩形矩形矩形平板中的电荷载体在没有外部磁场的情况下流动的理论考虑(所谓的自我场)是基于一种假设,即电荷载体在当前流动的方向上具有直流轨迹,而当前的磁力密度和磁力密度与伦敦的超级局面降低了伦敦的特征,而降低了伦敦的特征。在这里,我们在自田条件下计算电荷颗粒轨迹(作为单电子/孔,作为库珀对),发现电荷载体不会沿着平板表面遵循直觉的直线轨迹,而是弯曲的形状轨迹,这些轨迹跨越了平板的整个厚度。此外,如果粒子速度低于一定值,则电荷向相反的方向移动与名义电流流动。规范磁通密度分布和库珀对的向后运动的这种干扰可能是超导体中功率耗散的全部机制。
Dissipative-free electric current flow is one of the most fascinating and practically important property of superconductors. Theoretical consideration of the charge carriers flow in infinitely long rectangular slab of superconductor in the absence of external magnetic field (so called, self-field) is based on an assumption that the charge carriers have rectilinear trajectories in the direction of the current flow whereas the current density and magnetic flux density are decaying towards superconducting slab with London penetration depth as characteristic length. Here, we calculate charge particle trajectories (as single electron/hole, as Cooper pair) at self-field conditions and find that charge carriers do not follow intuitive rectilinear trajectories along the slab surface, but instead ones have meander shape trajectories which cross the whole thickness of the slab. Moreover, if the particle velocity is below some value, the charge moves in opposite direction to nominal current flow. This disturbance of the canonical magnetic flux density distribution and backward movement of Cooper pairs can be entire mechanism for power dissipation in superconductors.