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Prospects for measurement-based quantum computing with solid state spins

机译:具有固态自旋的基于测量的量子计算的前景

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This article aims to review the developments, both theoretical and experimental, that have in the past decade laid the ground for a new approach to solid state quantum computing. Measurement-based quantum computing (MBQC) requires neither direct interaction between qubits nor even what would be considered controlled generation of entanglement. Rather it can be achieved using entanglement that is generated probabilistically by the collapse of quantum states upon measurement. Single electronic spins in solids make suitable qubits for such an approach, offering long coherence times and well defined routes to optical measurement. We will review the theoretical basis of MBQC and experimental data for two frontrunner candidate qubits – nitrogen-vacancy (NV) centres in diamond and semiconductor quantum dots – and discuss the prospects and challenges that lie ahead in realising MBQC in the solid state.
机译:本文旨在回顾过去十年中的理论和实验发展,为固态量子计算的新方法奠定了基础。基于测量的量子计算(MBQC)既不需要量子位之间的直接交互,也不需要被认为是受控制的纠缠生成。而是可以使用量子态在测量时崩溃而产生的纠缠来实现。固体中的单个电子自旋为这种方法提供了合适的量子位,从而提供了较长的相干时间和明确的光学测量路径。我们将回顾MBQC的理论基础和两个领先的候选量子位(钻石和半导体量子点中的氮空位(NV)中心)的实验数据,并讨论实现固态MBQC的前景和挑战。

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