Hole spin qubits in planar Ge heterostructures are one of the frontrunner platforms for scalable quantum computers. In these systems, the spin-orbit interactions permit efficient all-electric qubit control. We propose a minimal design modification of planar devices that enhances these interactions by orders of magnitude and enables low power ultrafast qubit operations in the GHz range. Our approach is based on an asymmetric potential that strongly squeezes the quantum dot in one direction. This confinement-induced spin-orbit interaction does not rely on microscopic details of the device such as growth direction or strain and could be turned on and off on demand in state-of-the-art qubits
Spin qubits are considered to be among the most promising candidates for building a quantum processo...
Quantum information and computation has become a vast field paved with opportunities for researchers...
The spin-orbit interaction permits to control the state of a spin qubit via electric fields. For hol...
Hole spin qubits in planar Ge heterostructures are one of the frontrunner platforms for scalable qua...
Hole spin qubits are frontrunner platforms for scalable quantum computers because of their large spi...
Holes confined in quantum dots have gained considerable interest in the past few years due to their ...
Hole-spin qubits in quasi-one-dimensional structures are a promising platform for quantum informatio...
Quantum computers promise to execute complex tasks exponentially faster than any possible classical ...
Spins in semiconductor quantum dots are among the most promising candidates for the realization of a...
Spin quantum bits (qubits) defined in semiconductor quantum dots have emerged as a promising platfor...
Hole spins in semiconductor quantum dots can be efficiently manipulated with radio-frequency electri...
Flopping mode qubits in double quantum dots (DQDs) allow for coherent spin-photon hybridization and ...
Hole spin qubits are frontrunner platforms for scalable quantum computers, but state-of-the-art devi...
Quantum computers promise to execute complex tasks exponentially faster than any possible classical ...
Spin qubits are considered to be among the most promising candidates for building a quantum processo...
Spin qubits are considered to be among the most promising candidates for building a quantum processo...
Quantum information and computation has become a vast field paved with opportunities for researchers...
The spin-orbit interaction permits to control the state of a spin qubit via electric fields. For hol...
Hole spin qubits in planar Ge heterostructures are one of the frontrunner platforms for scalable qua...
Hole spin qubits are frontrunner platforms for scalable quantum computers because of their large spi...
Holes confined in quantum dots have gained considerable interest in the past few years due to their ...
Hole-spin qubits in quasi-one-dimensional structures are a promising platform for quantum informatio...
Quantum computers promise to execute complex tasks exponentially faster than any possible classical ...
Spins in semiconductor quantum dots are among the most promising candidates for the realization of a...
Spin quantum bits (qubits) defined in semiconductor quantum dots have emerged as a promising platfor...
Hole spins in semiconductor quantum dots can be efficiently manipulated with radio-frequency electri...
Flopping mode qubits in double quantum dots (DQDs) allow for coherent spin-photon hybridization and ...
Hole spin qubits are frontrunner platforms for scalable quantum computers, but state-of-the-art devi...
Quantum computers promise to execute complex tasks exponentially faster than any possible classical ...
Spin qubits are considered to be among the most promising candidates for building a quantum processo...
Spin qubits are considered to be among the most promising candidates for building a quantum processo...
Quantum information and computation has become a vast field paved with opportunities for researchers...
The spin-orbit interaction permits to control the state of a spin qubit via electric fields. For hol...