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Published on: October 13, 2017
Quantum Effects in Higher-Order Correlators of a Quantum-Dot Spin Qubit
A Bechtold1, F Li2,3, K Müller1,4
1Walter Schottky Institut and Physik Department, Technische Universität München, 85748 Garching, Germany.
Abstract:
We measure time correlators of a spin qubit in an optically active quantum dot beyond the second order. Such higher-order correlators are shown to be directly sensitive to pure quantum effects that cannot be explained within the classical framework. They allow direct determination of ensemble and quantum dephasing times, T_{2}^{*} and T_{2}, using only repeated projective measurements and without the need for coherent spin control. Our method enables studies of purely quantum behavior in solid state systems, including tests of the Leggett-Garg type of inequalities that rule out local hidden variable interpretation of the quantum-dot spin dynamics.
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