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可控人工无序对EuFe(AsP)铁磁超导体磁性能的影响

Effect of Controlled Artificial Disorder on the Magnetic Properties of EuFe(AsP) Ferromagnetic Superconductor.

作者信息

Ghimire Sunil, Kończykowski Marcin, Cho Kyuil, Tanatar Makariy A, Torsello Daniele, Veshchunov Ivan S, Tamegai Tsuyoshi, Ghigo Gianluca, Prozorov Ruslan

机构信息

Ames Laboratory, Ames, IA 50011, USA.

Department of Physics & Astronomy, Iowa State University, Ames, IA 50011, USA.

出版信息

Materials (Basel). 2021 Jun 13;14(12):3267. doi: 10.3390/ma14123267.

Abstract

Static (DC) and dynamic (AC, at 14 MHz and 8 GHz) magnetic susceptibilities of single crystals of a ferromagnetic superconductor, EuFe2(As1-xPx)2 ( = 0.23), were measured in pristine state and after different doses of 2.5 MeV electron or 3.5 MeV proton irradiation. The superconducting transition temperature, Tc(H), shows an extraordinarily large decrease. It starts at Tc(H=0)≈24K in the pristine sample for both AC and DC measurements, but moves to almost half of that value after moderate irradiation dose. Remarkably, after the irradiation not only Tc moves significantly below the FM transition, its values differ drastically for measurements at different frequencies, ≈16 K in AC measurements and ≈12 K in a DC regime. We attribute such a large difference in Tc to the appearance of the spontaneous internal magnetic field below the FM transition, so that the superconductivity develops directly into the mixed spontaneous vortex-antivortex state where the onset of diamagnetism is known to be frequency-dependent. We also examined the response to the applied DC magnetic fields and studied the annealing of irradiated samples, which almost completely restores the superconducting transition. Overall, our results suggest that in EuFe2(As1-xPx)2 superconductivity is affected by local-moment ferromagnetism mostly via the spontaneous internal magnetic fields induced by the FM subsystem. Another mechanism is revealed upon irradiation where magnetic defects created in ordered Eu2+ lattice act as efficient pairbreakers leading to a significant Tc reduction upon irradiation compared to other 122 compounds. On the other hand, the exchange interactions seem to be weakly screened by the superconducting phase leading to a modest increase of Tm (less than 1 K) after the irradiation drives Tc to below Tm. Our results suggest that FM and SC phases coexist microscopically in the same volume.

摘要

对铁磁超导体EuFe2(As1-xPx)2(x = 0.23)单晶在原始状态以及不同剂量的2.5 MeV电子或3.5 MeV质子辐照后的静态(直流)和动态(交流,频率为14 MHz和8 GHz)磁化率进行了测量。超导转变温度Tc(H)出现了极大的下降。在原始样品中,对于交流和直流测量,其在Tc(H = 0)≈24K开始,但在适度辐照剂量后降至该值的近一半。值得注意的是,辐照后不仅Tc显著低于铁磁转变温度,而且在不同频率测量时其值差异很大,交流测量中约为16K,直流测量中约为12K。我们将Tc的这种巨大差异归因于铁磁转变温度以下自发内部磁场的出现,使得超导直接发展为混合的自发涡旋 - 反涡旋态,其中抗磁性的起始已知与频率有关。我们还研究了对施加直流磁场的响应,并研究了辐照样品的退火情况,退火几乎完全恢复了超导转变。总体而言,我们的结果表明,在EuFe2(As1-xPx)2中,超导主要通过铁磁子系统诱导的自发内部磁场受到局域磁矩铁磁性的影响。辐照时揭示了另一种机制,有序Eu2+晶格中产生的磁缺陷作为有效的配对破坏者,导致与其他122化合物相比,辐照后Tc显著降低。另一方面,交换相互作用似乎被超导相微弱屏蔽,导致在辐照使Tc低于Tm后,Tm适度增加(小于1K)。我们的结果表明,铁磁相和超导相在微观上在同一体积中共存。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8c69/8231935/a19750436a6a/materials-14-03267-g001.jpg

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