We present measurements on gate-defined double quantum dots in Ge-Si core-shell nanowires, which we tune to a regime with visible shell filling in both dots. We observe a Pauli spin blockade and can assign the measured leakage current at low magnetic fields to spin-flip cotunneling, for which we measure a strong anisotropy related to an anisotropic g factor. At higher magnetic fields we see signatures for leakage current caused by spin-orbit coupling between (1,1) singlet and (2,0) triplet states. Taking into account these anisotropic spin-flip mechanisms, we can choose the magnetic field direction with the longest spin lifetime for improved spin-orbit qubits
In this work, we study hole transport in a planar silicon metal-oxide-semiconductor based double qua...
Spins in semiconductor quantum dots are among the most promising candidates for the realization of a...
In this thesis, we report a new architecture for making lateral hole quantum dots based on shallow a...
We present measurements on gate-defined double quantum dots in Ge-Si core-shell nanowires, which we ...
We present measurements on gate-defined double quantum dots in Ge-Si core-shell nanowires, which we ...
We present measurements on gate-defined double quantum dots in Ge-Si core-shell nanowires, which we ...
We present measurements on gate-defined double quantum dots in Ge-Si core-shell nanowires, which we ...
We present measurements on gate-defined double quantum dots in Ge-Si core-shell nanowires, which we ...
We present measurements on gate-defined double quantum dots in Ge-Si core-shell nanowires, which we ...
In a universal quantum computer, coherent control over the state of a quantum mechanical two-level s...
In a universal quantum computer, coherent control over the state of a quantum mechanical two-level s...
International audienceWe perform transport measurements on double quantum dots defined in Ge/Si core...
We report on experimental detection of the spin-orbit interaction field in an InAs nanowire double q...
Electrically defined semiconductor quantum dots are attractive systems for spin manipulation and qu...
Electrically defined semiconductor quantum dots are attractive systems for spin manipulation and qua...
In this work, we study hole transport in a planar silicon metal-oxide-semiconductor based double qua...
Spins in semiconductor quantum dots are among the most promising candidates for the realization of a...
In this thesis, we report a new architecture for making lateral hole quantum dots based on shallow a...
We present measurements on gate-defined double quantum dots in Ge-Si core-shell nanowires, which we ...
We present measurements on gate-defined double quantum dots in Ge-Si core-shell nanowires, which we ...
We present measurements on gate-defined double quantum dots in Ge-Si core-shell nanowires, which we ...
We present measurements on gate-defined double quantum dots in Ge-Si core-shell nanowires, which we ...
We present measurements on gate-defined double quantum dots in Ge-Si core-shell nanowires, which we ...
We present measurements on gate-defined double quantum dots in Ge-Si core-shell nanowires, which we ...
In a universal quantum computer, coherent control over the state of a quantum mechanical two-level s...
In a universal quantum computer, coherent control over the state of a quantum mechanical two-level s...
International audienceWe perform transport measurements on double quantum dots defined in Ge/Si core...
We report on experimental detection of the spin-orbit interaction field in an InAs nanowire double q...
Electrically defined semiconductor quantum dots are attractive systems for spin manipulation and qu...
Electrically defined semiconductor quantum dots are attractive systems for spin manipulation and qua...
In this work, we study hole transport in a planar silicon metal-oxide-semiconductor based double qua...
Spins in semiconductor quantum dots are among the most promising candidates for the realization of a...
In this thesis, we report a new architecture for making lateral hole quantum dots based on shallow a...