Abstract
Abstract
Interface superconductivity, realized in multiple artificial crystalline heterostructures, is one of the most exciting directions to search for high-temperature superconductivity. In this work, we prepare bulk (FeSe)
η
(SrTiO3)1−η
multi-grain composites by a simple facile liquid-phase compaction method using a spark-plasma-sintering technique. Combining transmission electron microscopy/scanning electron microscopy and x-ray diffraction investigations, we demonstrate that the composites consist of micron-scale SrTiO3 grains surrounded by [001]-compressed β-FeSe grains. Transport measurements for the composites with FeSe mole fraction η > 0.06 reveal that two superconducting channels, one T
c ∼ 13 K phase from FeSe/SrTiO3 interfaces and another T
c ∼ 7 K phase from FeSe grains, cooperatively induce macroscopic superconducting behavior with isotropic upper critical fields above 40 T. This work points out a straightforward method to enhance T
c in the multi-grain (FeSe)
η
(SrTiO3)1−η
composites by reducing the crystalline grains to nanoscale and finely tuning the stoichiometries of FeSe and SrTiO3.
Funder
National Natural Science Foundation of China
Liaoning Revitalization Talents Program
Subject
Materials Chemistry,Electrical and Electronic Engineering,Metals and Alloys,Condensed Matter Physics,Ceramics and Composites
Cited by
3 articles.
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