All optical preparation, storage and readout of a single spin in an individual quantum dot

被引:2
作者
Jovanov, Vase [1 ]
Klotz, Florian
Nger, Stephan Kap Fi
Heiss, Dominik
Spiga, Silvia
Rudolph, Daniel
Bichler, Max
Brandt, Martin S.
Abstreiter, Gerhard
Finley, Jonathan J.
机构
[1] Tech Univ Munich, Walter Schottky Inst, Coulombwall 4, D-85748 Garching, Germany
来源
ADVANCES IN PHOTONICS OF QUANTUM COMPUTING, MEMORY, AND COMMUNICATION V | 2012年 / 8272卷
关键词
Quantum Dots; GaAs; InGaAs; Readout; Charge; Hot Trion; Spin; Spin-Orbit; ELECTRON-SPIN; HOLE SPIN; ABSORPTION;
D O I
10.1117/12.907791
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
We demonstrate optical single electron spin-initialization, -storage and -readout in a single self-assembled InGaAs quantum dot using a spin memory device. Single electron spin relaxation is monitored over timescales exceeding >= 30 mu s, defined only by extrinsic experimental parameters such as the optical detection efficiency. The selective generation of a single electron in the dot is performed by resonant optical excitation and subsequent partial exciton ionization; the hole is removed from the dot whilst the electron remains stored. When subject to a magnetic field applied in Faraday geometry, we show how the spin of the electron can be prepared with a well defined spin projection relative to the light propagation direction simply by controlling the voltage applied to the gate electrode. The spin is stored then in the dot before being read out using an optical implementation of spin to charge conversion, whereby the spin projection of the electron is mapped onto a more robust variable, the charge state of the dot. After spin to charge conversion, we show how the charge occupancy can be repeatedly and non-perturbatively measured by pumping a luminescence recycling transition. The approach is shown to provide a readout signal 10(4) times stronger per spin when compared to previous methods. In combination with spin manipulation using the optical Stark effect or microwaves, our approach provides an ideal basis for probing spin coherence in single self-assembled quantum dots over long timescales and the development of methods for coherent spin control.
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页数:9
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