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Theory of Fast Optical Spin Rotation in a Quantum Dot Based on Geometric Phases and Trapped States

机译:基于几何相位和俘获态的量子点中快速光学自旋旋转理论

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A method is proposed for the optical rotation of the spin of an electron in a quantum dot using excited trion states to implement operations significantly faster than those of most existing proposals. Key ingredients are the geometric phase induced by 2π hyperbolic secant pulses, use of coherently trapped states and use of naturally dark states. Our proposal covers a variety of quantum dots by addressing different parameter regimes. Numerical simulations with typical parameters for InAs self-assembled quantum dots, including their dissipative dynamics, give fidelities of the operations in excess of 99%.
机译:提出了一种方法,该方法利用激发的Trion态使电子在量子点中的自旋进行光学旋转,从而比大多数现有技术快得多地实现操作。关键成分是2π双曲正割脉冲引起的几何相位,相干陷波态的使用和自然暗态的使用。我们的建议通过解决不同的参数制度来涵盖各种量子点。使用InAs自组装量子点的典型参数进行数值模拟(包括其耗散动力学),可以使操作的保真度超过99%。

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