Emergent anisotropic three-phase order in critically doped superconducting diamond films
Abstract
Two decades since its discovery, superconducting heavily boron-doped diamond (HBDD) still poses fundamental questions that need to be answered to unlock its full potential for quantum applications. We use electrical magnetotransport measurements of critically doped homoepitaxial single crystal HBDD films to reveal signatures of intrinsically granular superconductivity. By studying the dependence of electrical resistivity on temperature and magnetic field vector, we infer that this granularity arises from doping induced disorder. We observe an unexpected three-phase anisotropy in the magnetoresistance, accompanied by a spontaneous transverse voltage (Hall anomaly). Our findings indicate the emergence of an anisotropic order in an otherwise isotropic single crystal HBDD film, offering insights into the mechanism of superconductivity in this quantum material.
Article Details
Journal Info
Proceedings of the National Academy of Sciences
National Academy of Sciences
Authors (13)
Jyotirmay Dwivedi
Department of Physics, The Pennsylvania State University
Saurav Islam
Department of Physics, The Pennsylvania State University
Jake Morris
Department of Physics, The Pennsylvania State University
Kalana D. Halanayake
Gabriel A. Vázquez-Lizardi
Department of Chemistry, The Pennsylvania State University
David Snyder
Electronic Materials and Devices Department, Applied Research Lab, The Pennsylvania State University
Anthony Richardella
Department of Physics, The Pennsylvania State University
Luke Lyle
Electronic Materials and Devices Department, Applied Research Lab, The Pennsylvania State University
Danielle Reifsnyder Hickey
Nazar Delegan
Q-NEXT, Argonne National Laboratory
F. Joseph Heremans
Q-NEXT, Argonne National Laboratory
David D. Awschalom
Nitin Samarth
Department of Physics, The Pennsylvania State University