论文标题
激子动力学发现超导粉末中的电子分数化
Exciton dynamics uncovering electron fractionalization in superconducting cuprates
论文作者
论文摘要
电子准颗粒在简化成功成功的固体中描述多体物理学方面起着至关重要的作用。然而,传统的兰道(Landau)的费米 - 液体和准粒子理论用于高温超导丘比特(Cuprates),但从各个角度受到了怀疑。已经建立了一个破裂的电子分数框架,以替代显示分数量子霍尔效应和莫特绝缘现象的系统的费米 - 液体理论。它是否捕获伪造的基本物理和丘比特的超导阶段仍然是一个悬而未决的问题。在这里,我们表明,对最佳掺杂的BI $ _2 $ _2 $ _2 $ CACU $ _2 $ _2 $ o $ _ {8+δ} $的激发激发远高于超导间隙能量量表,大约1 ev甚至更高,这是由超电传导性的发作的异常增强。我们的发现证明了这种高能量激子参与超导性。因此,观察到的激子光谱重量的增强对伪群和超导机制的理论施加了至关重要的限制。一个简单的两个组分费用模型,它在伪塔状态中体现了电子分数很好地解释了这种变化,指出了一种新颖的途径,以理解超导粉末的电子结构。
Electron quasiparticles play a crucial role in simplifying the description of many-body physics in solids with surprising success. Conventional Landau's Fermi-liquid and quasiparticle theories for high-temperature superconducting cuprates have, however, received skepticism from various angles. A path-breaking framework of electron fractionalization has been established to replace the Fermi-liquid theory for systems that show the fractional quantum Hall effect and the Mott insulating phenomena; whether it captures the essential physics of the pseudogap and superconducting phases of cuprates is still an open issue. Here, we show that excitonic excitation of optimally doped Bi$_2$Sr$_2$CaCu$_2$O$_{8+δ}$ with energy far above the superconducting-gap energy scale, about 1 eV or even higher, is unusually enhanced by the onset of superconductivity. Our finding proves the involvement of such high-energy excitons in superconductivity. Therefore, the observed enhancement in the spectral weight of excitons imposes a crucial constraint on theories for the pseudogap and superconducting mechanisms. A simple two-component fermion model which embodies electron fractionalization in the pseudogap state well explains the change, pointing toward a novel route for understanding the electronic structure of superconducting cuprates.