All electrically controlled quantum gates for single heavy hole spin qubits
arXiv:1304.2674 · doi:10.1103/PhysRevB.87.195307
Abstract
In this paper, several nanodevices which realize basic single heavy hole qubit operations are proposed and supported by time dependent self consistent Poisson-Schrödinger calculations using a four band heavy hole-light hole model. In particular we propose a set of nanodevices which can act as Pauli X, Y, Z quantum gates and as a gate that acts similar as a Hadamard gate (i.e. it creates a balanced superposition of basis states but with an additional phase factor) on the heavy hole spin qubit. We also present the design and simulation of a gated semiconductor nanodevice which can realize an arbitrary sequence of all these proposed single quantum logic gates. The proposed devices exploit the self-focusing effect of the hole wave function which allows for guiding the hole along a given path in the form of a stable soliton-like wave packet. Thanks to the presence of the Dresselhaus spin orbit coupling, the motion of the hole along a certain direction is equivalent to the application of an effective magnetic field which induces in turn a coherent rotation of the heavy hole spin. The hole motion and consequently the quantum logic operation is initialized only by weak static voltages applied to the electrodes which cover the nanodevice. The proposed gates allow for an all electric and ultrafast (tens of picoseconds) heavy hole spin manipulation and give the possibility to implement a scalable architecture of heavy hole spin qubits for quantum computation applications.
13 pages, 9 figures
References in corpus (28)
- Single-shot read-out of an individual electron spin in a quantum dot
- Driven coherent oscillations of a single electron spin in a quantum dot
- Spin qubits in graphene quantum dots
- Coherent control of a single electron spin with electric fields
- A single-atom electron spin qubit in silicon
- Circuit Quantum Electrodynamics with a Spin Qubit
- Spin decoherence of a heavy hole coupled to nuclear spins in a quantum dot
- Spin relaxation and decoherence of holes in quantum dots
- Spin-echo of a single electron spin in a quantum dot
- Observation of extremely slow hole spin relaxation in self-assembled quantum dots
- Electron spin decoherence of single Nitrogen-Vacancy defects in diamond
- Electron Spin Dephasing due to Hyperfine Interactions with a Nuclear Spin Bath
- Electric Dipole Spin Resonance for Heavy Holes in Quantum Dots
- Hole - Nuclear Spin Interaction in Quantum Dots
- Electrical control over single hole spins in nanowire quantum dots
- Fast optical preparation, control and read-out of single quantum dot spin
- Spin-orbit interaction and anomalous spin relaxation in carbon nanotube quantum dots
- Nuclear Spins in Nanostructures
- Valley-spin blockade and spin resonance in carbon nanotubes
- Direct measurement of the hole-nuclear spin interaction in single quantum dots
- Scalable qubit architecture based on holes in quantum dot molecules
- Impact of heavy hole-light hole coupling on optical selection rules in GaAs quantum dots
- Non-destructive measurement of electron spins in a quantum dot
- Spin-3/2 physics of semiconductor hole nanowires: Valence-band mixing and tunable interplay between bulk-material and orbital bound-state spin splittings
- Spin-echo dynamics of a heavy hole in a quantum dot
- Electron-nuclei spin dynamics in II-VI semiconductor quantum dots
- Induced quantum dots and wires: electron storage and delivery
- Effect of strain on hyperfine-induced hole-spin decoherence in quantum dots
Cited by in corpus (8)
- Optimal operation points for ultrafast, highly coherent Ge hole spin-orbit qubits
- Landau-Zener-Stuckelberg-Majorana interferometry of a single hole
- Spin blockade as a probe of Zeeman interactions in hole quantum dots
- Strong Hyperfine-Induced Modulation of an Optically-Driven Hole Spin in an InAs Quantum Dot
- Electron spin rotations induced by oscillating Rashba interaction in a quantum wire
- The emergent linear Rashba spin-orbit coupling offering the fast manipulation of hole-spin qubits in germanium
- Spin-orbit enabled quantum transport channels in a two-hole double quantum dot
- Spin echo dynamics under an applied drift field in graphene nanoribbon superlattices