Spin qubits in germanium are a promising contender for scalable quantum computers. Reading out of the spin and charge configuration of quantum dots formed in Ge/Si core/shell nanowires is typically performed by measuring the current through the nanowire. Here, we demonstrate a more versatile approach on investigating the charge configuration of these quantum dots. We employ a high-impedance, magnetic-field resilient superconducting resonator based on NbTiN and couple it to a double quantum dot in a Ge/Si nanowire. This allows us to dispersively detect charging effects, even in the regime where the nanowire is fully pinched off and no direct current is present. Furthermore, by increasing the electro-chemical potential far beyond the nanowire...
We report integrated charge sensing measurements on a Si/SiGe double quantum dot. The quantum dot is...
Spins in semiconductor quantum dots are among the most promising candidates for the realization of a...
Holes confined in quantum dots have gained considerable interest in the past few years due to their ...
Spin qubits in germanium are a promising contender for scalable quantum computers. Reading out of th...
Spin qubits in germanium are a promising contender for scalable quantum computers. Reading out of th...
Spin qubits are a promising contender for quantum information technology. However, spin-entangling g...
We define single quantum dots of lengths varying from 60 nm up to nearly half a micron in Ge-Si core...
Controlling decoherence is the biggest challenge in efforts to develop quantum information hardware....
Heavy holes confined in quantum dots are predicted to be promising candidates for the realization of...
We report highly tunable control of holes in Ge/Si core/shell nanowires. We demonstrate the ability ...
A quantum computer requires a quantum-mechanical two-level system with coherent control over its eig...
A controllable and coherent light-matter interface is an essential element for a scalable quantum in...
We report on ambipolar gate-defined quantum dots in silicon on insulator nanowires fabricated using ...
We report integrated charge sensing measurements on a Si/SiGe double quantum dot. The quantum dot is...
Spins in semiconductor quantum dots are among the most promising candidates for the realization of a...
Holes confined in quantum dots have gained considerable interest in the past few years due to their ...
Spin qubits in germanium are a promising contender for scalable quantum computers. Reading out of th...
Spin qubits in germanium are a promising contender for scalable quantum computers. Reading out of th...
Spin qubits are a promising contender for quantum information technology. However, spin-entangling g...
We define single quantum dots of lengths varying from 60 nm up to nearly half a micron in Ge-Si core...
Controlling decoherence is the biggest challenge in efforts to develop quantum information hardware....
Heavy holes confined in quantum dots are predicted to be promising candidates for the realization of...
We report highly tunable control of holes in Ge/Si core/shell nanowires. We demonstrate the ability ...
A quantum computer requires a quantum-mechanical two-level system with coherent control over its eig...
A controllable and coherent light-matter interface is an essential element for a scalable quantum in...
We report on ambipolar gate-defined quantum dots in silicon on insulator nanowires fabricated using ...
We report integrated charge sensing measurements on a Si/SiGe double quantum dot. The quantum dot is...
Spins in semiconductor quantum dots are among the most promising candidates for the realization of a...
Holes confined in quantum dots have gained considerable interest in the past few years due to their ...