Wafer-Scale MgB<sub>2</sub> Superconducting Devices.

Kim, Changsub; Bell, Christina; Evans, Jake M; Greenfield, Jonathan; Batson, Emma; Berggren, Karl K; Lewis, Nathan S; Cunnane, Daniel P · ACS Nano · 2024

basic_science · Level V

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Abstract

Progress in superconducting device and detector technologies over the past decade has realized practical applications in quantum computers, detectors for far-infrared telescopes, and optical communications. Superconducting thin-film materials, however, have remained largely unchanged, with aluminum still being the material of choice for superconducting qubits and niobium compounds for high-frequency/high kinetic inductance devices. Magnesium diboride (MgB<sub>2</sub>), known for its highest transition temperature (<i>T</i><sub>c</sub> = 39 K) among metallic superconductors, is a viable material for elevated temperature and higher frequency superconducting devices moving toward THz frequencies. However, difficulty in synthesizing wafer-scale thin films has prevented implementation of MgB<sub>2</sub> devices into the application base of superconducting electronics. Here, we report ultrasmooth (<0.5 nm root-mean-square roughness) and uniform MgB<sub>2</sub> thin (<100 nm) films over 100 mm in diameter and present prototype devices fabricated with these films demonstrating key superconducting properties including an internal quality factor over 10<sup>4</sup> at 4.5 K and high tunable kinetic inductance in the order of tens of pH/sq in a 40 nm thick film. This advancement will enable development of elevated temperature, high-frequency superconducting quantum circuits, and devices.