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Revealing the microscopic mechanism of elementary vortex pinning in superconductors

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Chen, Chen;Liu, Yue;Chen, Yun;Hu, Yining;Zhang, Tianzhen;Li, Dong;Wang, Xu;Wang, Chenxi;Lu, Zouyouwei;Zhang, Yuhang;Zhang, Qingle;Dong, Xiaoli;Wang, Rui;Feng, Donglai;Zhang, Tong

Description

Vortex pinning is a crucial factor that determines the critical current of practical superconductors and enables their diverse applications. However, the underlying mechanism of vortex pinning has long been elusive, lacking a clear microscopic explanation. Here, using high-resolution scanning tunneling microscopy, we studied single vortex pinning induced by a point defect in layered FeSe-based superconductors. We found the defect-vortex interaction drives low-energy vortex bound states away from EF, creating a “mini” gap that effectively lowers the system energy and enhances pinning. By measuring the local density of states, we directly obtained the elementary pinning energy and estimated the pinning force via the spatial gradient of pinning energy. The results are consistent with bulk critical current measurement. Furthermore, we show that a general microscopic quantum model incorporating defect-vortex interaction can naturally capture our observation. It suggests that the local pairing near the pinned vortex core is actually enhanced compared to an unpinned vortex, which is beyond the traditional understanding that non-superconducting regions pin vortices. Our study thus unveils a general microscopic mechanism of vortex pinning in superconductors, and provides insights for enhancing the critical current of practical superconductors.

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Metrics

Dataset Index

1.1

FAIR Score

69%

Citations

2

Mentions

0

Metrics Over Time

Publication Details

DOI

Publisher

Dryad

License

Creative Commons Zero v1.0 Universal

Assigned Domain

Subfield

Condensed Matter Physics

Field

Physics and Astronomy

Domain

Physical Sciences

Confidence Score

49%

Source

Scholar Data Model

Keywords

FOS: Physical sciencesScanning tunneling microscopyVortex pinningpinning energy

Normalization Factors

FT

52.88

CTw

1.00

MTw

1.00