Spin-based all-optical quantum computation with quantum dots: Understanding and suppressing decoherence
Abstract
We present an all-optical implementation of quantum computation using semiconductor quantum dots. Quantum memory is represented by the spin of an excess electron stored in each dot. Two-qubit gates are realized by switching on trion-trion interactions between different dots. State selectivity is achieved via conditional laser excitation exploiting Pauli exclusion principle. Read out is performed via a quantum-jump technique. We analyze the effect on our scheme’s performance of the main imperfections present in real quantum dots: exciton decay, hole mixing, and phonon decoherence. We introduce an adiabatic gate procedure that allows one to circumvent these effects and evaluate quantitatively its fidelity.
- Publication:
-
Physical Review A
- Pub Date:
- July 2003
- DOI:
- arXiv:
- arXiv:quant-ph/0304044
- Bibcode:
- 2003PhRvA..68a2310C
- Keywords:
-
- 03.67.Lx;
- 85.35.Be;
- Quantum computation;
- Quantum well devices;
- Quantum Physics
- E-Print:
- Phys. Rev. A 68 012310 (2003)