-axis strain tuning of superconductivity and symmetric elastoresistivity in CsVSb
arXiv:2607.14803
The study investigates how applying out-of-plane (c‑axis) compression to the kagome metal CsV₃Sb₅ influences its superconducting transition temperature and charge‑density‑wave order, using combined in‑plane strain and c‑axis compression to separate symmetric strain channels and measure elastoresistivity coefficients.
Abstract
The kagome metal CsVSb hosts an intriguing interplay between charge-density-wave (CDW) order and superconductivity that is highly sensitive to lattice distortions. However, determining the specific roles of the in-plane () and out-of-plane () symmetric strain channels has been hindered by their intrinsic mixing in conventional piezo-based experiments. Here, we combine in-plane uniaxial strain with direct -axis compression to independently access and disentangle these symmetry-resolved responses in CsVSb. We reveal that -axis compression drives a massive, linear enhancement of the superconducting transition temperature () alongside a suppression of . The tuning efficiency of this out-of-plane deformation acts with an opposite sign and far exceeds that of in-plane strain, demonstrating that -axis lattice control dictates the phase competition. Furthermore, by isolating the pure elastoresistivity coefficients, we find that the out-of-plane cross-coupling coefficient () is comparable in magnitude but opposite in sign to the in-plane response (). Unlike the sharply peaked in-plane response, exhibits a distinct, order-parameter-like onset across the CDW transition. Our results establish that out-of-plane lattice control plays a dominant role in tuning the intertwined states in CsVSb and provide a general pathway for resolving strain-coupled electronic responses in layered quantum materials.
8 pages, 4 figures