Spin-orbit qubit (SOQ) is the dressed spin by the orbital degree of freedom through a strong spin-orbit coupling (SOC). We show that Coulomb interaction between two electrons in quantum dots located separately in two nanowires can efficiently induce quantum entanglement between two SOQs. But to achieve the highest possible value for two SOQs concurrence, strength of SOC and confining potential for the quantum dots should be tuned to an optimal ratio. The physical mechanism to achieve such quantum entanglement is based on the feasibility of the SOQ responding to the external electric field via an intrinsic electric dipole spin resonance
Motion of electrons can influence their spins through a fundamental effect called spin–orbit interac...
We propose a scheme for detecting entanglement between two-electron spin qubits in a double quantum ...
Motion of electrons can influence their spins through a fundamental effect called spin–orbit interac...
Recently, an implementation of a universal set of one- and two-quantum-bit gates for quantum computa...
Recently, an implementation of a universal set of one- and two-quantum-bit gates for quantum computa...
We propose a simple setup of three coupled quantum dots in the Coulomb blockade regime as a source f...
We propose schemes for generating spatially-separated spin entanglement in systems of two quantum do...
We study the two-qubit controlled-not gate operating on qubits encoded in the spin state of a pair o...
A theoretical scheme is presented for the entanglement of two-electron spin qubits bound in series w...
A theoretical scheme is presented for the entanglement of two-electron spin qubits bound in series w...
We show that the competition between pair entanglement of two spin qubits in double quantum dots att...
We consider a new quantum gate mechanism based on electron spins in coupled semiconductor quantum do...
An alternating electric field, applied to a quantum dot, couples to the electron spin via the spin-o...
We demonstrate control of the electron number down to the last electron in tunable few-electron quan...
Motion of electrons can influence their spins through a fundamental effect called spin–orbit interac...
Motion of electrons can influence their spins through a fundamental effect called spin–orbit interac...
We propose a scheme for detecting entanglement between two-electron spin qubits in a double quantum ...
Motion of electrons can influence their spins through a fundamental effect called spin–orbit interac...
Recently, an implementation of a universal set of one- and two-quantum-bit gates for quantum computa...
Recently, an implementation of a universal set of one- and two-quantum-bit gates for quantum computa...
We propose a simple setup of three coupled quantum dots in the Coulomb blockade regime as a source f...
We propose schemes for generating spatially-separated spin entanglement in systems of two quantum do...
We study the two-qubit controlled-not gate operating on qubits encoded in the spin state of a pair o...
A theoretical scheme is presented for the entanglement of two-electron spin qubits bound in series w...
A theoretical scheme is presented for the entanglement of two-electron spin qubits bound in series w...
We show that the competition between pair entanglement of two spin qubits in double quantum dots att...
We consider a new quantum gate mechanism based on electron spins in coupled semiconductor quantum do...
An alternating electric field, applied to a quantum dot, couples to the electron spin via the spin-o...
We demonstrate control of the electron number down to the last electron in tunable few-electron quan...
Motion of electrons can influence their spins through a fundamental effect called spin–orbit interac...
Motion of electrons can influence their spins through a fundamental effect called spin–orbit interac...
We propose a scheme for detecting entanglement between two-electron spin qubits in a double quantum ...
Motion of electrons can influence their spins through a fundamental effect called spin–orbit interac...