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通过聚焦离子束诱导沉积生长的厚度调制钨碳超导纳米结构,用于在高磁场下实现涡旋钉扎。

Thickness-modulated tungsten-carbon superconducting nanostructures grown by focused ion beam induced deposition for vortex pinning up to high magnetic fields.

作者信息

Serrano Ismael García, Sesé Javier, Guillamón Isabel, Suderow Hermann, Vieira Sebastián, Ibarra Manuel Ricardo, De Teresa José María

机构信息

Laboratorio de Microscopías Avanzadas (LMA), Instituto de Nanociencia de Aragón (INA), Universidad de Zaragoza, 50018 Zaragoza, Spain; Departamento de Física de la Materia Condensada, Universidad de Zaragoza, 50009 Zaragoza, Spain.

Laboratorio de Bajas Temperaturas, Unidad Asociada UAM/CSIC, Instituto Nicolás Cabrera, Condensed Matter Physics Center (IFIMAC), Departa-mento de Física de la Materia Condensada, Universidad Autónoma de Madrid, Spain.

出版信息

Beilstein J Nanotechnol. 2016 Nov 14;7:1698-1708. doi: 10.3762/bjnano.7.162. eCollection 2016.

Abstract

We report efficient vortex pinning in thickness-modulated tungsten-carbon-based (W-C) nanostructures grown by focused ion beam induced deposition (FIBID). By using FIBID, W-C superconducting films have been created with thickness modulation properties exhibiting periodicity from 60 to 140 nm, leading to a strong pinning potential for the vortex lattice. This produces local minima in the resistivity up to high magnetic fields (2.2 T) in a broad temperature range due to commensurability effects between the pinning potential and the vortex lattice. The results show that the combination of single-step FIBID fabrication of superconducting nanostructures with built-in artificial pinning landscapes and the small intrinsic random pinning potential of this material produces strong periodic pinning potentials, maximizing the opportunities for the investigation of fundamental aspects in vortex science under changing external stimuli (e.g., temperature, magnetic field, electrical current).

摘要

我们报道了通过聚焦离子束诱导沉积(FIBID)生长的厚度调制钨碳基(W-C)纳米结构中高效的涡旋钉扎现象。利用FIBID技术,制备出了具有厚度调制特性的W-C超导薄膜,其周期性范围为60至140纳米,从而为涡旋晶格产生了强大的钉扎势。由于钉扎势与涡旋晶格之间的可公度效应,在很宽的温度范围内,直至高磁场(2.2 T)时,电阻率都会出现局部最小值。结果表明,具有内置人工钉扎景观的超导纳米结构的单步FIBID制造与该材料较小的固有随机钉扎势相结合,产生了强大的周期性钉扎势,极大地增加了在变化的外部刺激(如温度、磁场、电流)下研究涡旋科学基本方面的机会。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6903/5238659/7344134b1408/Beilstein_J_Nanotechnol-07-1698-g002.jpg

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