Enhancement of Proximity Induced Superconductivity in a Planar Ge Hole Gas
arXiv:2012.00322 · doi:10.1103/PhysRevResearch.3.L022005
Abstract
Hole gases in planar germanium can have high mobilities in combination with strong spin-orbit interaction and electrically tunable g-factors, and are therefore emerging as a promising platform for creating hybrid superconductor-semiconductor devices. A key challenge towards hybrid Ge-based quantum technologies is the design of high-quality interfaces and superconducting contacts that are robust against magnetic fields. In this work, by combining the assets of aluminum, which provides good contact to the Ge, and niobium, which has a significant superconducting gap, we demonstrate highly transparent low-disordered JoFETs with relatively large \IcRn \ products that are capable of withstanding high magnetic fields. We furthermore demonstrate the ability of phase-biasing individual JoFETs, opening up an avenue to explore topological superconductivity in planar Ge. The persistence of superconductivity in the reported hybrid devices beyond 1.8 Tesla paves the way towards integrating spin qubits and proximity-induced superconductivity on the same chip.
References in corpus (4)
- Non-Abelian Anyons and Topological Quantum Computation
- Circuit Quantum Electrodynamics with a Spin Qubit
- Transparent Semiconductor-Superconductor Interface and Induced Gap in an Epitaxial Heterostructure Josephson Junction
- Proximity Effect Transfer from NbTi into a Semiconductor Heterostructure via Epitaxial Aluminum