The ability to coherently transport electron-spin states between different sites of gate-defined semiconductor quantum dots is an essential ingredient for a quantum-dot-based quantum computer. Previous shuttles using electrostatic gating were too slow to move an electron within the spin dephasing time across an array. Here, we report a nanosecond-timescale spin transfer of individual electrons across a quadruple-quantum-dot device. Utilizing enhanced relaxation rates at a so-called hot spot, we can upper bound the shuttle time to at most 150 ns. While actual shuttle times are likely shorter, 150 ns is already fast enough to preserve spin coherence in, e.g., silicon based quantum dots. This work therefore realizes an important prerequisite f...
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...
Recent technological advances hint at the future possibility to use single electron spins as carrier...
We demonstrate a coherent spin shuttle through a GaAs/AlGaAs quadruple-quantum-dot array. Starting w...
We propose a spin-selective coherent electron transfer in a silicon quantum dot array. Oscillating m...
We propose a spin-selective coherent electron transfer in a silicon quantum dot array. Oscillating m...
We are pursuing a capability to perform time resolved manipulations of single spins in quantum dot c...
We are pursuing a capability to perform time resolved manipulations of single spins in quantum dot c...
This thesis describes a series of experiments aimed at understanding and controlling single electron...
International audienceThe ability to shuttle coherently individual electron spins in arrays of quant...
Coherent interactions at a distance provide a powerful tool for quantum simulation and computation. ...
Coherent interactions at a distance provide a powerful tool for quantum simulation and computation. ...
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...
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...
Motion of electrons can influence their spins through a fundamental effect called spin–orbit interac...
Recent technological advances hint at the future possibility to use single electron spins as carrier...
We demonstrate a coherent spin shuttle through a GaAs/AlGaAs quadruple-quantum-dot array. Starting w...
We propose a spin-selective coherent electron transfer in a silicon quantum dot array. Oscillating m...
We propose a spin-selective coherent electron transfer in a silicon quantum dot array. Oscillating m...
We are pursuing a capability to perform time resolved manipulations of single spins in quantum dot c...
We are pursuing a capability to perform time resolved manipulations of single spins in quantum dot c...
This thesis describes a series of experiments aimed at understanding and controlling single electron...
International audienceThe ability to shuttle coherently individual electron spins in arrays of quant...
Coherent interactions at a distance provide a powerful tool for quantum simulation and computation. ...
Coherent interactions at a distance provide a powerful tool for quantum simulation and computation. ...
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...
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...
Motion of electrons can influence their spins through a fundamental effect called spin–orbit interac...
Recent technological advances hint at the future possibility to use single electron spins as carrier...