Superconducting critical temperature and dimensionality tuning of RbV$_3$Sb$_5$ via biaxial strain
Tsz Fung Poon, King Yau Yip, Ying Kit Tsui, Lingfei Wang, Kai Ham Yu, Wei Zhang, Zheyu Wang, Taketo Nakatani, Chishiro Michioka, Hiroaki Ueda, Siu Tung Lam, Kwing To Lai, Swee K. Goh

TL;DR
Applying biaxial strain to RbV$_3$Sb$_5$ significantly enhances its superconducting critical temperature and induces a transition from multi-band to two-dimensional superconductivity, providing a new way to control quantum states.
Contribution
This study demonstrates that biaxial strain can effectively tune both $T_c$ and the dimensionality of superconductivity in RbV$_3$Sb$_5$, a Kagome metal.
Findings
$T_c$ increased by 75% under 1.50% biaxial strain
Transition from multi-band to single-band superconductivity observed
Superconductivity becomes more two-dimensional with tensile strain
Abstract
Kagome metal AVSb (A=K, Rb, Cs) has emerged as an intriguing platform for exploring the interplay between superconductivity and other quantum states. Among the three compounds, RbVSb has a notably lower superconducting critical temperature () at ambient pressure, posing challenges in exploring the superconducting state. For instance, the upper critical field () is small and thus difficult to measure accurately against other control parameters. Hence, enhancing superconductivity would facilitate measurements, providing insights into key superconducting properties such as the dimensionality. In this letter, we report the tuning of the in RbVSb through the application of biaxial strain. Utilizing a negative thermal expansion material ZrWO as a substrate, we achieve a substantial biaxial strain of , resulting in a…
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