Quantum computing via defect states in two-dimensional anti-dot lattices
Christian Flindt, Niels Asger Mortensen, Antti-Pekka Jauho
Abstract
We propose a new structure suitable for quantum computing in a solid state environment: designed defect states in antidot lattices superimposed on a two-dimensional electron gas at a semiconductor heterostructure. State manipulation can be obtained with gate control. Model calculations indicate that it is feasible to fabricate structures whose energy level structure is robust against thermal dephasing.
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