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添加银的多晶FeSe样品的过剩电导率分析

Excess Conductivity Analysis of Polycrystalline FeSe Samples with the Addition of Ag.

作者信息

Koblischka Michael Rudolf, Slimani Yassine, Koblischka-Veneva Anjela, Karwoth Thomas, Zeng XianLin, Hannachi Essia, Murakami Masato

机构信息

Experimental Physics, Saarland University, P.O. Box 151150, D-66044 Saarbrücken, Germany.

SIT Research Laboratories, Shibaura Institute of Technology, Tokyo 135-8548, Japan.

出版信息

Materials (Basel). 2020 Nov 6;13(21):5018. doi: 10.3390/ma13215018.

Abstract

Bulk FeSe superconductors of the iron-based (IBS) "11" family containing various additions of silver were thoroughly investigated concerning the microstructure using optical microscopy and electron microscopy (TEM and SEM). The measurements of electrical resistivity were performed through the four-point technique in the temperature interval T= 2-150 K. The Aslamazov-Larkin model was employed to analyze the fluctuation-induced conductivity (FIC) in all acquired measurements. In all studied products, we found that the FIC curves consist of five different regimes of fluctuation, viz. critical region (CR), three-dimensional (3D), two-dimensional (2D), one-dimensional (1D), and shortwave fluctuation (SWF) regimes. The critical current density (Jc), the lower and upper critical magnetic fields (Bc1 and Bc2), the coherence length along the -axis at zero-temperature (ξc(0)), and further parameters were assessed with regards to the silver amount within the products. The analyses discloses a diminution in the resistivity and a great reduction in ξc(0) with Ag addition. The optimal silver doping amount is achieved for 7 wt.%, which yields the best superconducting transition and the greatest Jc value.

摘要

对添加了各种银的铁基(IBS)“11”族块状FeSe超导体,使用光学显微镜和电子显微镜(透射电子显微镜和扫描电子显微镜)对其微观结构进行了全面研究。通过四点技术在T = 2 - 150 K的温度区间内进行了电阻率测量。在所有获取的测量中,采用阿斯兰佐夫 - 拉金模型分析涨落诱导电导率(FIC)。在所有研究的产品中,我们发现FIC曲线由五种不同的涨落状态组成,即临界区域(CR)、三维(3D)、二维(2D)、一维(1D)和短波涨落(SWF)状态。根据产品中的银含量评估了临界电流密度(Jc)、下临界和上临界磁场(Bc1和Bc2)、零温度下沿c轴的相干长度(ξc(0))以及其他参数。分析表明,添加银后电阻率降低,ξc(0)大幅减小。银的最佳掺杂量为7 wt.%,此时超导转变最佳,Jc值最大。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/220a/7664390/4ecb4c97f243/materials-13-05018-g001.jpg

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