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Optimal diabatic dynamics of Majorana-based quantum gates

机译:基于Majorana的量子门的最佳绝热动力学

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摘要

In topological quantum computing, unitary operations on qubits are performed by adiabatic braiding of non-Abelian quasiparticles, such as Majorana zero modes, and are protected from local environmental perturbations. In the adiabatic regime, with timescales set by the inverse gap of the system, the errors can be made arbitrarily small by performing the process more slowly. To enhance the performance of quantum information processing with Majorana zero modes, we apply the theory of optimal control to the diabatic dynamics of Majorana-based qubits. While we sacrifice complete topological protection, we impose constraints on the optimal protocol to take advantage of the nonlocal nature of topological information and increase the robustness of our gates. By using the Pontryagin's maximum principle, we show that robust equivalent gates to perfect adiabatic braiding can be implemented in finite times through optimal pulses. In our implementation, modifications to the device Hamiltonian are avoided. Focusing on thermally isolated systems, we study the effects of calibration errors and external white and 1/f (pink) noise on Majorana-based gates. While a noise-induced antiadiabatic behavior, where a slower process creates more diabatic excitations, prohibits indefinite enhancement of the robustness of the adiabatic scheme, our fast optimal protocols exhibit remarkable stability to noise and have the potential to significantly enhance the practical performance of Majorana-based information processing.
机译:在拓扑量子计算中,对量子位的单一运算是通过非阿贝尔准粒子的绝热编织(例如Majorana零模式)来进行的,并且受到了局部环境扰动的保护。在绝热状态下,时间尺度由系统的逆间隙设定,通过更慢地执行该过程可以使误差任意减小。为了增强Majorana零模式的量子信息处理性能,我们将最优控制理论应用于基于Majorana的量子位的非绝热动力学。在牺牲完整的拓扑保护的同时,我们在最佳协议上施加了限制,以利用拓扑信息的非本地性质并提高门的鲁棒性。通过使用Pontryagin的最大原理,我们证明了可以通过最佳脉冲在有限的时间内实现鲁棒的等效绝热编织等效门。在我们的实现中,避免了对设备哈密顿量的修改。着眼于热隔离系统,我们研究了校准误差以及外部基于白色和1 / f(粉红色)噪声对基于Majorana的门的影响。虽然由噪声引起的抗绝热行为(较慢的过程会产生更多的非绝热激发)禁止无限提高绝热方案的鲁棒性,但我们的快速最佳方案显示出对噪声的显着稳定性,并有可能显着提高Majorana-基于信息的处理。

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  • 来源
    《Physical review. B, Condensed Matter And Materals Physics》 |2017年第7期|075158.1-075158.8|共8页
  • 作者单位

    Department of Physics and Astronomy and Advanced Materials Science and Engineering Center, Western Washington University, Bellingham, Washington 98225, USA;

    Department of Physics, Indiana University, Bloomington, Indiana 47405, USA;

    Department of Physics and Astronomy and Stewart Blusson Quantum Matter Institute, University of British Columbia, Vancouver, British Columbia, Canada V6T 1Z4;

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