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首页> 外文期刊>Physica, C. Superconductivity and its applications >Spectroscopy of the Andreev bound state of high-temperature superconductors: Measurements of quasiparticle scattering, anisotropy and broken time-reversal symmetry
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Spectroscopy of the Andreev bound state of high-temperature superconductors: Measurements of quasiparticle scattering, anisotropy and broken time-reversal symmetry

机译:高温超导体的安德列夫键态的光谱学:准粒子散射,各向异性和断裂时间反转对称性的测量

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摘要

Tunneling and electron paramagnetic resonance (EPR) spectroscopies are used to investigate the quasiparticle (QP) density of states (DoS) of high-temperature superconductors. Planar tunnel junctions are formed on oriented thin films of Y1Ba2Cu3O7 (YBCO) and single crystals of Ba2Sr2Ca1Cu2O8 (BSCCO). Data are obtained as a function of crystallographic orientation, temperature, doping, damage and applied magnetic field. These data demonstrate that the observed zero bias conductance peak (ZBCP) is composed of Andreev bound states (ABS) which nucleate at an ab-plane interface of a d-wave symmetry superconductor. Tunneling into doped or ion-damaged YBCO shows that the ZBCP is weakened at the same rate as the gap-like feature, and provides a measure of the QP scattering rate below T-c. An applied field causes a splitting of the ZBCP, which is due to a Doppler shift arising from the scaler product between the QP velocity and superfluid momentum, V-F.P-S The dramatic hysteresis observed with increasing and decreasing applied field is consistent with the effects of strong vortex pinning at or near the interface. The magnitude of the splitting is strongly dependent on the direction of the applied magnetic field, demonstrating the highly-anisotropic transport properties of the ABS. In-plane tunneling into single crystal BSCCO also demonstrates crystallographic orientation dependence expected for a d-wave symmetry order parameter (OP). Temperature dependence in zero applied magnetic field shows the ZBCP splits below similar to 8K, consistent with a phase transition into a superconducting state with spontaneously-broken time-reversal symmetry (BTRS). Electron paramagnetic resonance (EPR) experiments are used to directly detect the spontaneous formation of the magnetic moments in the BTRS state. [References: 25]
机译:隧道和电子顺磁共振(EPR)光谱学用于研究高温超导体的准粒子(QP)态密度(DoS)。在Y1Ba2Cu3O7(YBCO)的取向薄膜和Ba2Sr2Ca1Cu2O8(BSCCO)的单晶上形成平面隧道结。获得的数据是晶体学取向,温度,掺杂,损伤和施加的磁场的函数。这些数据表明,观察到的零偏置电导峰(ZBCP)由在d波对称超导体的ab平面界面成核的Andreev束缚态(ABS)组成。隧穿到掺杂或离子损伤的YBCO中表明ZBCP以与间隙状特征相同的速率被削弱,并提供了低于T-c的QP散射速率的量度。外加磁场导致ZBCP分裂,这是由于QP速度和超流体动量VF.PS之间的缩放器乘积引起的多普勒频移引起的。随着外加磁场的增大和减小,观察到的剧烈滞后现象与强磁场的影响相一致。涡旋固定在界面处或界面附近。分裂的幅度强烈地取决于所施加的磁场的方向,证明了ABS的高度各向异性的传输特性。面内隧穿到单晶BSCCO中还证明了d波对称性阶次参数(OP)的晶体学取向依赖性。零外加磁场中的温度依赖性显示ZBCP分裂低于8K,与具有自发断裂的时间反转对称性(BTRS)的超导状态相变一致。电子顺磁共振(EPR)实验用于直接检测BTRS状态下磁矩的自发形成。 [参考:25]

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