Department of Physics A. Volta, Università degli Studi di Pavia, Pavia, Italy.
Science. 2012 Mar 30;335(6076):1600-3. doi: 10.1126/science.1216765.
Unveiling the nature of the bosonic excitations that mediate the formation of Cooper pairs is a key issue for understanding unconventional superconductivity. A fundamental step toward this goal would be to identify the relative weight of the electronic and phononic contributions to the overall frequency (Ω)-dependent bosonic function, Π(Ω). We performed optical spectroscopy on Bi(2)Sr(2)Ca(0.92)Y(0.08)Cu(2)O(8+δ) crystals with simultaneous time and frequency resolution; this technique allowed us to disentangle the electronic and phononic contributions by their different temporal evolution. The spectral distribution of the electronic excitations and the strength of their interaction with fermionic quasiparticles fully account for the high critical temperature of the superconducting phase transition.
揭示介导库珀对形成的玻色激发的本质是理解非常规超导性的一个关键问题。实现这一目标的一个基本步骤是确定电子和声子对整体频率(Ω)相关玻色函数 Π(Ω)的相对贡献的权重。我们对具有同时时间和频率分辨率的 Bi(2)Sr(2)Ca(0.92)Y(0.08)Cu(2)O(8+δ)晶体进行了光学光谱分析;这项技术允许我们通过它们不同的时间演化来区分电子和声子的贡献。电子激发的光谱分布及其与费米子准粒子的相互作用强度完全解释了超导相变的高温临界温度。