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Effect of nonmagnetic impurities on the electronic state of quasiparticles confined in the naturally prepared nanostructure under magnetic field in YBa2CU3Oy

机译:非磁性杂质对YBa2CU3Oy中磁场作用下天然制备的纳米结构中准粒子电子态的影响

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The effects of Zn impurities on the electronic state in the vortex core were investigated systematically in almost optimally doped YBa2(Cu1-xZnx)(3)O-y (0 <= x <= 0.06) using the microwave complex surface impedance (4,) measurement technique. We estimated the viscosity, eta, and the pinning constant, k(p), of a vortex as functions of temperature and x on the basis of a mean-field theory of the vortex motion. k(p) as a function of Zn concentration, x, suggests that Zn doping is not an effective procedure for pinning the vortex motion. eta(x) depended very weakly on x for x <= 0.003, while it decreased rapidly with increasing X for x > 0.003. These finding suggest that the scattering of QPs in the vortex core is much larger than that in the Meissner (zero-field) state for x <= 0.003. On the other hand, for x > 0.003, the scattering of QPs in the vortex core is governed by Zn impurity, showing that the presence of the vortex is not important for the scattering in this regime. The large scattering in the low-doping-concentration region (x <= 0.003) is particularly important, since this is characteristic of the presence of the vortex core. Our result is consistent with the previously published microwave result for the Zn-free material [Tsuchiya et al.: Phys. Rev. B 63 (2001) 1845 17] in the sense that both experimental data suggest the existence of the high QP-DOS in the vortex core, but is inconsistent with a picture proposed by STM measurements on the vortex core. We discuss possible origins for this discrepancy, including novel mechanisms of energy dissipation in the motion of a moderately clean (l similar to xi) vortex core.
机译:使用微波复数表面阻抗(4,)测量系统地研究了几乎最佳掺杂的YBa2(Cu1-xZnx)(3)Oy(0 <= x <= 0.06)中Zn杂质对涡流核中电子态的影响。技术。我们根据涡旋运动的平均场理论估算了涡旋的粘度eta和钉扎常数k(p)作为温度和x的函数。 k(p)作为Zn浓度x的函数,表明Zn掺杂不是固定涡旋运动的有效方法。对于x <= 0.003,eta(x)几乎不依赖于x,而对于x> 0.003,eta(x)随着X的增加而迅速下降。这些发现表明,对于x <= 0.003,在涡旋核中QP的散射要比在迈斯纳(零场)状态下的QP大得多。另一方面,当x> 0.003时,涡旋核中QP的散射受Zn杂质的控制,这表明在这种情况下,涡旋的存在对散射并不重要。在低掺杂浓度区域(x <= 0.003)中的大散射特别重要,因为这是涡流核的存在的特征。我们的结果与先前发表的无锌材料的微波结果一致[Tsuchiya et al .: Phys。 Rev. B 63(2001)1845 17]的意义是,两个实验数据均表明涡旋核中存在高QP-DOS,但与STM测量涡旋核所提出的图像不一致。我们讨论了这种差异的可能根源,包括中度清洁(与xi相似)涡芯运动中能量耗散的新机制。

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