All-Optical Measurement Based QIP in Quantum Dots
Avinash Kolli, Brendon W. Lovett, Simon C. Benjamin, Thomas M. Stace
Abstract
Parity measurements on qubits can generate the entanglement resource necessary for scalable quantum computation. Here we describe a method for fast optical parity measurements on electron spin qubits within coupled quantum dots. The measurement scheme, which can be realised with existing technology, consists of the optical excitation of excitonic states followed by monitored relaxation. Conditional on the observation of a photon, the system is projected into the odd/even parity subspaces. Our model incorporates all the primary sources of error, including detector inefficiency, effects of spatial separation and non-resonance of the dots, and also unwanted excitations. Through an analytical treatment we establish that the scheme is robust to such effects. Two applications are presented: a realisation of a CNOT gate, and a technique for growing large scale graph states.
Create a lesson
Related papers
Marginal spectral distributions on regular bipartite unitary orbits
Lin Zhang
Quantum Imaginary Time Evolution on an Infinite 1D Chain
Hao-Ti Hung, Tung Tsao, Ying-Jer Kao
Exact quantum splitting and the structure of finite algebras
Muhammad Imran
Quantum-interference metrology of dissipative Kerr solitons
Yun-Ru Fan, Yong Geng, Ji Liu et al.
Indirect stabilization of N -level quantum systems
Francesca Carlotta Chittaro
Best Annealing Path of Quantum Annealing via Efficient Adiabatic Phase Transition
Kiyotaka Murashima