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Fidelity of optically controlled single- and two-qubit operations on Coulomb-coupled quantum dots

机译:在库仑耦合量子点上进行光控制的单量子比特和二量子比特运算的保真度

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摘要

We investigate the effect of the Coulomb interaction on the applicability of quantum gates on a system of two Coulombcoupled quantum dots.Wecalculate the fidelity for a single- and a two-qubit gate and the creation of Bell states in the system.The influence of radiative damping is also studied. We find that the application of quantum gates based on the Coulomb interaction leads to significant input state-dependent errors which strongly depend on the Coulomb coupling strength. By optimizing the Coulomb matrix elements via the material and the external field parameters, error rates in the range of 10~(-3) can be reached. Radiative dephasing is a more serious problem and typically leads to larger errors on the order of 10~(-2) for the considered gates. In the specific case of the generation of a maximally entangled Bell state, error rates in the range of 10~(-3) can be achieved even in the presence of radiative dephasing.
机译:我们研究了库仑相互作用对两个库仑耦合量子点系统上量子门适用性的影响,计算了单量子比特和二量子比特门的保真度以及系统中钟形的产生。还研究了阻尼。我们发现,基于库仑相互作用的量子门的应用导致与输入状态有关的显着误差,而误差很大程度上取决于库仑耦合强度。通过材料和外场参数对库仑矩阵元素进行优化,误差率可以达到10〜(-3)。辐射移相是一个更严重的问题,对于所考虑的门,通常会导致较大的误差,约为10〜(-2)。在产生最大纠缠的贝尔状态的特定情况下,即使在存在辐射相移的情况下,也可以实现10〜(-3)范围内的错误率。

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