Sixfold enhancement of superconductivity in a tunable electronic nematic system
Abstract
The electronic nematic phase, wherein electronic degrees of freedom lower the crystal rotational symmetry, is a common motif across a number of high-temperature superconductors. However, understanding the role and influence of nematicity and nematic fluctuations in Cooper pairing is often complicated by the coexistence of other orders, particularly long-range magnetic order. Here we report the enhancement of superconductivity in a model electronic nematic system absent of magnetism, and show that the enhancement is directly born out of strong nematic fluctuations emanating from a tuned quantum phase transition. We use elastoresistance measurements of the BaSrNiAs substitution series to show that strontium substitution promotes an electronically driven nematic order in this system, and that the complete suppression of that order to absolute zero temperature evokes a dramatic enhancement of the pairing strength, as evidenced by a sixfold increase in the superconducting transition temperature. The direct relation between enhanced pairing and nematic fluctuations in this model system, as well as the interplay with a unidirectional charge density wave order comparable to that found in the cuprates, offers a means to elucidate the role of nematicity in boosting superconductivity.
Keywords
Cite
@article{arxiv.1903.00986,
title = {Sixfold enhancement of superconductivity in a tunable electronic nematic system},
author = {Chris Eckberg and Daniel J. Campbell and Tristin Metz and John Collini and Halyna Hodovanets and Tyler Drye and Peter Zavalij and Morten H. Christensen and Rafael M. Fernandes and Sangjun Lee and Peter Abbamonte and Jeffrey Lynn and Johnpierre Paglione},
journal= {arXiv preprint arXiv:1903.00986},
year = {2020}
}
Comments
16 pages, 15 figures