论文标题
高磁场超声研究的旋转冰冻研究$ _ {1.88} $ sr $ _ {0.12} $ cuo $ _4 $ $ _4 $
High magnetic field ultrasound study of spin freezing in La$_{1.88}$Sr$_{0.12}$CuO$_4$
论文作者
论文摘要
高 - $ t _ {\ rm {c}} $ cuprate超导体主机旋转,充电和晶格不稳定性。特别是,在抗铁磁玻璃相中,在较大的掺杂范围内,基于灯笼的蛋白层显示出具有抗铁磁相关性的玻璃状自旋冷冻。以前,在La $ _ {2-X} $ _ {X} $ CUO $ _4 $(LSCO)中,声音速度异常用于孔掺杂$ p \ geq 0.145 $(LSCO),并解释为是由磁性玻璃的耦合而引起的[FRACHET [FRACHET [FRACHET [FRACHET [FRACHET [FRACHET]。物理。 16,1064-1068(2020)]。在这里,我们报告了LSCO $ p = 0.12 $的声音速度和衰减,即在兴奋剂水平上,自旋冷冻温度最高。使用高磁场并与核磁共振(NMR)测量值进行比较,我们确认LSCO的低温超声特性中的异常是通过晶格和自旋玻璃之间的耦合而产生的。此外,我们表明,声音速度和衰减都可以通过最初为规范旋转玻璃开发的简单现象学模型同时考虑。我们的结果表明,通过磁场调节超导性和自旋冻结之间的巨大竞争。对不同声学模式的比较表明,慢自旋波动具有列分特征。
High-$T_{\rm{c}}$ cuprate superconductors host spin, charge and lattice instabilities. In particular, in the antiferromagnetic glass phase, over a large doping range, lanthanum based cuprates display a glass-like spin freezing with antiferromagnetic correlations. Previously, sound velocity anomalies in La$_{2-x}$Sr$_{x}$CuO$_4$ (LSCO) for hole doping $p\geq 0.145$ were reported and interpreted as arising from a coupling of the lattice to the magnetic glass [Frachet, Vinograd et al., Nat. Phys. 16, 1064-1068 (2020)]. Here we report both sound velocity and attenuation in LSCO $p=0.12$, i.e. at a doping level for which the spin freezing temperature is the highest. Using high magnetic fields and comparing with nuclear magnetic resonance (NMR) measurements, we confirm that the anomalies in the low temperature ultrasound properties of LSCO are produced by a coupling between the lattice and the spin glass. Moreover, we show that both sound velocity and attenuation can be simultaneously accounted for by a simple phenomenological model originally developed for canonical spin glasses. Our results point towards a strong competition between superconductivity and spin freezing, tuned by the magnetic field. A comparison of different acoustic modes suggests that the slow spin fluctuations have a nematic character.