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Updated: May 28, 2025

Visualizing Uniaxial-strain Manipulation of Antiferromagnetic Domains in Fe1+YTe Using a Spin-polarized Scanning Tunneling Microscope
Published on: March 24, 2019
Proximity Effect of Antiferromagnetic Material on FeSeTe Superconductor
Hongming Zhang1,2, Christopher Luth1,2, Rajveer Jha1,2
1Department of Electrical and Computer Engineering, J. J. Pickle Research Campus, 10100 Burnet Road Bldg 160, Austin, Texas 78758, United States.
Abstract:
We explore the proximity effect of 2D antiferromagnetic (AFM) MnPS3 on an exfoliated superconducting sample. First, we characterized a FeSeTe (FST) superconducting sample and then placed the AFM layer on top of the exfoliated FeSeTe. The superconducting transition temperature Tczero increased marginally for the AFM/FST sample, while we found a significant improvement in the upper critical field (B) for the AFM/FST sample. We extracted B from electrical resistivity measurements under different magnetic fields in the B//c and B//ab plane. The thermal activation energy and its power law relation for low temperatures were studied using ρ(T) vs B data. The thermally activated flux flow effect is observed, resulting in a noticeable increase in the in-plane critical field. Moreover, the vortex glass transition does not exhibit any notable differences among the samples. The Hall effect shows a sign change from negative to positive below 150 K for AFM/FST, which suggests that two types of carriers mediated the transport due to the proximity effect. A considerable decrease in the critical current Ic is also observed. The two steps in the IV curves suggest possible quantum phase slips, which are more vital for the AFM/FST device.
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