Superconductivity in Shear Strained Semiconductors
arXiv:2107.08266 · doi:10.1088/0256-307X/38/8/086301
Abstract
Semiconductivity and superconductivity are remarkable quantum phenomena that have immense impact on science and technology, and materials that can be tuned, usually by pressure or doping, to host both types of quantum states are of great fundamental and practical significance. Here we show by first-principles calculations a distinct route for tuning semiconductors into superconductors by diverse large-range elastic shear strains, as demonstrated in exemplary cases of silicon and silicon carbide. Analysis of strain driven evolution of bonding structure, electronic states, lattice vibration, and electron-phonon coupling unveils robust pervading deformation induced mechanisms auspicious for modulating semiconducting and superconducting states under versatile material conditions. This finding opens vast untapped structural configurations for rational exploration of tunable emergence and transition of these intricate quantum phenomena in a broad range of materials.
References in corpus (7)
- Quantum ESPRESSO: a modular and open-source software project for quantum simulations of materials
- Superconductivity in CVD Diamond Thin Film Well-Above Liquid Helium Temperature
- Three-dimensional MgB-type superconductivity in hole-doped diamond
- Origin of Superconductivity in Boron-doped Diamond
- Highly-robust reentrant superconductivity in CsV3Sb5 under pressure
- Electron-Phonon Coupling in Boron-Doped Diamond Superconductor
- High sensitivity variable-temperature infrared nanoscopy of conducting oxide interfaces