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Featured researches published by Jiqiang Jia.


Journal of Materials Chemistry C | 2016

Strongly improved current-carrying capacity induced by nanoscale lattice strains in YBa2Cu3O7−δ–Ba0.7Sr0.3TiO3 composite films derived from chemical solution deposition

Li Lei; Lu Liu; Xiuting Wang; Shasha Wang; Jiqiang Jia; Gaoyang Zhao; Chuanbao Wu; Lihua Jin; Chengshan Li; Pingxiang Zhang

It is commonly expected that YBa2Cu3O7−δ (YBCO) coated conductors can exhibit strong vortex pinning force when they are used at high temperature (77 K) and different magnetic field orientations which are angled to the YBCO c-axis. In this paper, we showed a simple approach, making a YBCO film to epitaxially grow on the Ba0.7Sr0.3TiO3 (BST) microarray buffered LaAlO3 (LAO) substrate, to introduce nanoscale crystalline defects into the YBCO matrix. High concentration nanodefects including dislocations, intergrowths, stacking faults and plane buckling have been observed by high-resolution transmission electron microscopy (HRTEM). It was demonstrated through magnetization vs. magnetic field strength measurement that these nanodefects could provide quasi-isotropic vortex pinning characteristic of the so-called nanostructured YBCO films, containing large numbers of defects, which would promote power applications of coated conductors. It is believed that non-superconductivity regions (the dimension is close to the order of ξ, the coherence length of YBCO) caused by nanodefects are considered as effective pinning centers to inhibit flux creep. Therefore, large pinning energy can be easily obtained for YBCO films if considerable nanodefects are introduced into the epitaxial YBCO matrix no matter which method is employed to produce the nanostructured YBCO film. We illustrated the essential reason for the strong enhancement of the critical current density of the YBCO film under both self- and applied magnetic fields, that is, lattice strains (elongated and shortened Cu–O bonds) caused by crystalline nanodefects lead to the distinctly improved current-carrying capacity of the YBCO film.


Ceramics International | 2015

Fabrication of superconducting YBa2Cu3O7−x delay lines by a chemically modified sol-gel method

Jiqiang Jia; Gaoyang Zhao; Li Lei; Qiushi Huang; Lu Liu


Science China-technological Sciences | 2013

Fabrication of YBCO superconducting microarray by sol-gel process using photosensitive metal chelates

Gaoyang Zhao; Jiqiang Jia; Fen Jiang; Li Lei; JunShan Ma


Journal of Materials Science: Materials in Electronics | 2016

Preparation of a finely patterned LaNiO3 film via chemical modification

Jiqiang Jia; Gaoyang Zhao; Xin Wang; Li Lei


Materials Characterization | 2018

A compositional gradient Ce 1−x Zr x O 2 buffer architecture for producing high-performance YBCO film

Li Lei; Limin Li; Shasha Wang; Gaoyang Zhao; Jiqiang Jia; Yoshifumi Oshima; Lei Zhao; Lihua Jin; Yao Wang; Chengshan Li; Pingxiang Zhang


Applied Surface Science | 2018

Non-UV activated superhydrophilicity of patterned Fe-doped TiO2 film for anti-fogging and photocatalysis

Zongfan Duan; Yu Zhu; Pengrong Ren; Jiqiang Jia; Shu Yang; Gaoyang Zhao; Yuntao Xie; Jingyu Zhang


Ceramics International | 2016

Preparation of LaNiO3/SrTiO3/LaNiO3 capacitor structure through sol–gel process

Jiqiang Jia; Gaoyang Zhao; Li Lei; Xin Wang


The Japan Society of Applied Physics | 2018

Development of Zr-doped CeO 2 single buffer layers for YBCO coated conductor applications

Li Lei; Limin Li; Shasha Wang; Gaoyang Zhao; Jiqiang Jia; Yoshifumi Oshima; Lihua Jin; Chengshan Li; Pingxiang Zhang


Materials Chemistry and Physics | 2018

High efficiency preparation of Bi 2 Sr 2 CaCu 2 O 8+δ superconducting thin films by an acetate based Sol-Gel process

Xiaoqin Liu; Gaoyang Zhao; Li Lei; Xinxiong Fang; Jiqiang Jia


IEEE Transactions on Applied Superconductivity | 2018

Preparation of Bi2Sr2CaCu2O8+δ-YBa2Cu 3O7−δ Bilayer Films by Acetate Based Photosensitive Sol-Gel Method

Xiaoqin Liu; Gaoyang Zhao; Li Lei; Limin Li; Xinxiong Fang; Jiqiang Jia

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Li Lei

Japan Advanced Institute of Science and Technology

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Pingxiang Zhang

Northwestern Polytechnical University

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Yoshifumi Oshima

Japan Advanced Institute of Science and Technology

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Yao Wang

Northwestern Polytechnical University

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Lei Zhao

Shanghai Jiao Tong University

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Pengrong Ren

Northwestern Polytechnical University

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