Department of Physics and Zhejiang Institute of Modern Physics, Zhejiang University, Hangzhou, 310027, People's Republic of China.
Phys Rev Lett. 2011 Feb 4;106(5):056402. doi: 10.1103/PhysRevLett.106.056402. Epub 2011 Feb 2.
Several experimental candidates for quantum spin liquids have been discovered in the past few years which appear to support gapless fermionic S=1/2 excitations called spinons. The spinons may form a Fermi sea coupled to a U(1) gauge field, and may undergo a pairing instability. We show that despite being charge neutral, the spinons couple to phonons in exactly the same way that electrons do in the long wavelength limit. Therefore, we can use sound attenuation to measure the spinon mass and lifetime. Furthermore, transverse ultrasonic attenuation is a direct probe of the onset of pairing because the Meissner effect of the gauge field causes a "rapid fall" of the attenuation at T(c) in addition to the reduction due to the opening of the energy gap. This phenomenon, well known in clean superconductors, may reveal the existence of the U(1) gauge field.
在过去的几年中,已经发现了几种量子自旋液体的实验候选物,它们似乎支持无能隙费米子 S=1/2 激发,称为自旋子。自旋子可能形成与 U(1)规范场耦合的费米海,并可能经历配对不稳定性。我们表明,尽管自旋子是电中性的,但它们与声子的耦合方式与电子在长波长极限下的耦合方式完全相同。因此,我们可以使用声音衰减来测量自旋子的质量和寿命。此外,横向超声衰减是配对开始的直接探针,因为规范场的迈斯纳效应除了由于能隙打开而导致的衰减减少之外,还会导致 T(c)处衰减的“快速下降”。这种现象在干净的超导体中是众所周知的,它可能揭示 U(1)规范场的存在。