Valley splittings in Si/SiGe quantum dots with a germanium spike in the silicon well
arXiv:2104.08232 · doi:10.1103/PhysRevB.104.085406
Abstract
Silicon-germanium heterostructures have successfully hosted quantum dot qubits, but the intrinsic near-degeneracy of the two lowest valley states poses an obstacle to high fidelity quantum computing. We present a modification to the Si/SiGe heterostructure by the inclusion of a spike in germanium concentration within the quantum well in order to increase the valley splitting. The heterostructure is grown by chemical vapor deposition and magnetospectroscopy is performed on gate-defined quantum dots to measure the excited state spectrum. We demonstrate a large and widely tunable valley splitting as a function of applied vertical electric field and lateral dot confinement. We further investigate the role of the germanium spike by means of tight-binding simulations in single-electron dots and show a robust doubling of the valley splitting when the spike is present, as compared to a standard (spike-free) heterostructure. This doubling effect is nearly independent of the electric field, germanium content of the spike, and spike location. This experimental evidence of a stable, tunable quantum dot, despite a drastic change to the heterostructure, provides a foundation for future heterostructure modifications.
11 pages, 7 figures
References in corpus (3)
Cited by in corpus (28)
- Semiconductor Spin Qubits
- Blueprint of a scalable spin qubit shuttle device for coherent mid-range qubit transfer in disordered Si/SiGe/SiO
- SiGe quantum wells with oscillating Ge concentrations for quantum dot qubits
- Practical Strategies for Enhancing the Valley Splitting in Si/SiGe Quantum Wells
- Low disorder and high valley splitting in silicon
- How valley-orbit states in silicon quantum dots probe quantum well interfaces
- Toward Robust Autotuning of Noisy Quantum Dot Devices
- Coherent spin-valley oscillations in silicon
- Mapping of valley-splitting by conveyor-mode spin-coherent electron shuttling
- Utilizing multimodal microscopy to reconstruct Si/SiGe interfacial atomic disorder and infer its impacts on qubit variability
- Enhanced Valley Splitting in Si Layers with Oscillatory Ge Concentration
- Interface and electromagnetic effects in the valley splitting of Si quantum dots
- Cryogen-free scanning gate microscope for the characterization of Si/SiGe quantum devices at milli-Kelvin temperatures
- Atomistic compositional details and their importance for spin qubits in isotope-purified silicon-germanium quantum wells
- Valley splitting depending on the size and location of a silicon quantum dot
- Industrially fabricated single-electron quantum dots in Si/Si-Ge heterostructures
- Flopping-mode electron dipole spin resonance in the strong-driving regime
- Theory of Valley Splitting in Si/SiGe Spin-Qubits: Interplay of Strain, Resonances and Random Alloy Disorder
- Local laser-induced solid-phase recrystallization of phosphorus-implanted Si/SiGe heterostructures for contacts below 4.2 K
- Long-range two-hybrid-qubit gates mediated by a microwave cavity with red sidebands
- Tailoring potentials by simulation-aided design of gate layouts for spin qubit applications
- Scalable Parity Architecture With a Shuttling-Based Spin Qubit Processor
- Latched readout for the quantum dot hybrid qubit
- Fabrication, characterization and mechanical loading of Si/SiGe membranes for spin qubit devices
- Micromagnet-free operation of electron spin qubits in Si/SiGe vertical double quantum dots
- Density dependence of the excitation gaps in an undoped Si/SiGe double-quantum-well heterostructure
- Proposed Five-Electron Charge Quadrupole Qubit
- Exact Multi-Valley Envelope Function Theory of Valley Splitting in Si/SiGe Nanostructures