Spatially Resolving Valley Quantum Interference of a Donor in Silicon
arXiv:1403.4648 · doi:10.1038/nmat3941
Abstract
Electron and nuclear spins of donor ensembles in isotopically pure silicon experience a vacuum-like environment, giving them extraordinary coherence. However, in contrast to a real vacuum, electrons in silicon occupy quantum superpositions of valleys in momentum space. Addressable single-qubit and two-qubit operations in silicon require that qubits are placed near interfaces, modifying the valley degrees of freedom associated with these quantum superpositions and strongly influencing qubit relaxation and exchange processes. Yet to date, spectroscopic measurements only indirectly probe wavefunctions, preventing direct experimental access to valley population, donor position, and environment. Here we directly probe the probability density of single quantum states of individual subsurface donors, in real space and reciprocal space, using scanning tunneling spectroscopy. We directly observe quantum mechanical valley interference patterns associated with linear superpositions of valleys in the donor ground state. The valley population is found to be within of a bulk donor when nm from the interface, indicating that valley perturbation-induced enhancement of spin relaxation will be negligible for depths nm. The observed valley interference will render two-qubit exchange gates sensitive to atomic-scale variations in positions of subsurface donors. Moreover, these results will also be of interest to emerging schemes proposing to encode information directly in valley polarization.
5 pages, 4 figures. Supplementary Information: 10 pages, 8 figures
References in corpus (9)
- Valley filter and valley valve in graphene
- Valley susceptibility of an interacting two-dimensional electron system
- Quantized conductance of a suspended graphene nanoconstriction
- Valley-spin blockade and spin resonance in carbon nanotubes
- Physical mechanisms of interface-mediated intervalley coupling in Si
- Quantum control of donor electrons at the Si-SiO2 interface
- Quantized conductance in an AlAs 2D electron system quantum point contact
- Detection of a large valley-orbit splitting in silicon with two-donor spectroscopy
- Engineered valley-orbit splittings in quantum confined nanostructures in silicon
Cited by in corpus (50)
- Quantum Simulation of the Hubbard Model with Dopant Atoms in Silicon
- SiQAD: A Design and Simulation Tool for Atomic Silicon Quantum Dot Circuits
- Spin relaxation in a Si quantum dot due to spin-valley mixing
- Multivalley effective mass theory simulation of donors in silicon
- Engineering inter-qubit exchange coupling between donor bound electrons in silicon
- Spatial Metrology of Dopants in Silicon with Exact Lattice Site Precision
- Time-Resolved Single Dopant Charge Dynamics in Silicon
- Charge-insensitive single-atom spin-orbit qubit in silicon
- Theory of one and two donors in Silicon
- Electrostatic Landscape of a H-Silicon Surface Probed by a Moveable Quantum Dot
- An orbitally derived single-atom magnetic memory
- Control of valley dynamics in silicon quantum dots in the presence of an interface step
- Intervalley Scattering of Interlayer Excitons in a MoS/MoSe/MoS Heterostructure in High Magnetic Field
- Quantum Computing with Acceptor Spins in Silicon
- Spin-lattice relaxation times of single donors and donor clusters in silicon
- Extended Hubbard model for mesoscopic transport in donor arrays in silicon
- Valley interference and spin exchange at the atomic scale in silicon
- Valley Degree of Freedom in Two-Dimensional van der Waals Materials
- Atomic-level Characterisation of Quantum Computer Arrays by Machine Learning
- Two-electron states of a group V donor in silicon from atomistic full configuration interaction
- Multivalley two-dimensional electron system in an AlAs quantum well with mobility exceeding cmVs
- Symmetry breaking and spin-orbit coupling for individual vacancy-induced in-gap states in MoS2 monolayers
- Valley-enhanced fast relaxation of gate-controlled donor qubits in silicon
- Roadmap on Atomic-scale Semiconductor Devices
- Spatially resolved resonant tunneling on single atoms in silicon
- Donor Wavefunctions in Si Gauged by STM Images
- Interface-induced heavy-hole/light-hole splitting of acceptors in silicon
- Multi-valley envelope function equations and effective potentials for P impurity in silicon
- Electrical operation of hole spin qubits in planar MOS silicon quantum dots
- Valley filtering and spatial maps of coupling between silicon donors and quantum dots
- Exact location of dopants below the Si(001):H surface from scanning tunnelling microscopy and density functional theory
- Linear and planar molecules formed by coupled P donors in silicon
- Interface effects on acceptor qubits in silicon and germanium
- Quasiparticle excitations in a one-dimensional interacting topological insulator: Application for dopant-based quantum simulation
- Optical Control of Donor Spin Qubits in Silicon
- Scanned single-electron probe inside a silicon electronic device
- Towards visualisation of central-cell-effects in scanning-tunnelling-microscope images of subsurface dopant qubits in silicon
- Hole in one: Pathways to deterministic single-acceptor incorporation in Si(100)-21
- Optimisation of electrically-driven multi-donor quantum dot qubits
- Novel characterisation of dopant-based qubits
- Measurements and atomistic theory of electron factor anisotropy for phosphorus donors in strained silicon
- Dynamical topological quantum computation using spin pulse control in the Heisenberg model
- An atomic scale study of Si-doped AlAs by cross-sectional scanning tunneling microscopy and density functional theory
- Hydrogenic Spin-Valley states of the Bromine donor in 2H-MoTe
- Excited states of a phosphorus pair in silicon: Effects of valley-orbital interaction and electron-electron interactions
- Influence of sample momentum space features on scanning tunnelling microscope measurements
- Bardeen's tunneling theory applied to intraorbital and interorbital hopping integrals between dopants in silicon
- A Computational Workflow for Designing Silicon Donor Qubits
- Local Kondo temperatures in atomic chains
- Donors in Ge as Qubits: Establishing Physical Attributes