论文标题
铜岩中的电子和磁激发及其在超导过渡中的作用
Coupled electronic and magnetic excitations in the cuprates and their role in the superconducting transition
论文作者
论文摘要
库珀对的形成是通过交换声子的两个相反自旋和动量的绑定状态[1],是常规超导性的定义特征。在铜矿高温超导体中,即使已经确定超导状态也由库珀对组成,但配对机制仍然激烈争论。在这里,我们通过采用直接从角度分辨光发射(ARPES)实验获得的光谱函数来研究BI2SR2CACU2O8+δ(BI2212)铜酸盐中的超导配对,作为输入伯特 - α-亚酸盐差距方程的输入。假设Cooper配对仅由自旋波动驱动,我们构建了单环自旋介导的介导的配对相互作用,并使用它来计算粒子粒子通道中伯特 - 甲虫方程的特征函数和特征值,以用于多个Bi2212样品。结果的关键点是,随着温度的降低,接近TC时领先的特征值增加,在与每个掺杂值相对应的TC时达到约1个值,表明使用D波特征函数进行超导过渡。这表明自旋波动可以大致解释TC,因此介导铜矿高温超导体中的配对。
The formation of Cooper pairs, a bound state of two electrons of opposite spin and momenta by exchange of a phonon [1], is a defining feature of conventional superconductivity. In the cuprate high temperature superconductors, even though it has been established that the superconducting state also consists of Cooper pairs, the pairing mechanism remains intensely debated. Here we investigate superconducting pairing in the Bi2Sr2CaCu2O8+δ(Bi2212) cuprate by employing spectral functions obtained directly from angle-resolved photoemission (ARPES) experiments as input to the Bethe-Salpeter gap equation. Assuming that Cooper pairing is driven solely by spin fluctuations, we construct the single-loop spin-fluctuation-mediated pairing interaction, and use it to compute the eigenfunctions and eigenvalues of the Bethe-Salpeter equation in the particle-particle channel for multiple Bi2212 samples. The key point of our results is that, as the temperature is reduced, the leading eigenvalue increases upon approaching Tc, reaching a value of approximately 1 at the Tc corresponding to each doping value, indicating a superconducting transition with d-wave eigenfunctions. This suggests that spin fluctuations can approximately account for Tc and, consequently, mediate pairing in the cuprate high temperature superconductors.