DOE OSTI · 3001287
Strain-tunable microwave-resonance technique for quantum materials
Abstract
By integrating a dielectric microwave resonator with a piezoelectric-based strain device, we develop an in situ strain-tunable microwave spectroscopy technique that enables contactless measurements of material properties under strain. To demonstrate the capability of this device, we measure the strain-dependent microwave surface impedance of the representative iron-based superconductor BaFe 2 (As 1−𝑥 P 𝑥 ) 2 at the slightly overdoped composition. We successfully control and observe the suppression of superconductivity under both compressive and tensile anisotropic lattice distortions along the tetragonal [110] T direction, as manifested by changes in the quality factor and resonance frequency shifts of microwave resonance. Furthermore, strain-induced changes in microwave surface resistivity, an extension of conventional DC-limit transport elastoresistivity to the microwave regime, provide information on electronic anisotropy equivalent to that of DC elastoresistivity, while offering a contactless alternative. Furthermore, our strain-tunable cavity therefore serves as a powerful, contactless probe of fundamental material properties under strain and may also potentially facilitate the design of hybrid quantum systems with strain-engineered quantum degrees of freedom.
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Hosoi, Suguru [Osaka Univ. (Japan); Los Alamos National Laboratory (LANL), Los Alamos, NM (United States)] (ORCID:0000000191594091), Matsuura, Kohei [Univ. of Tokyo (Japan)] (ORCID:0009000008842200), Shimozawa, Masaaki [Osaka Univ. (Japan)] (ORCID:0009000633147158), Izawa, Koichi [Osaka Univ. (Japan)], Kasahara, Shigeru [Okayama Univ. (Japan)] (ORCID:0000000260079617), Shibauchi, Takasada [Univ. of Tokyo (Japan)] (ORCID:0000000158314924). 2025-08-11. Strain-tunable microwave-resonance technique for quantum materials. https://doi.org/10.1103/x9gz-dhmr
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