论文标题
定制的脉冲设计,用于与被困离子的稳健快速两倍的大门
Bespoke Pulse Design for Robust Rapid Two-Qubit Gates with Trapped Ions
论文作者
论文摘要
两倍的门性能对于扩大离子陷阱量子计算至关重要。需要优化的量子控制才能减少栅极时间和门误差。我们通过量子主方程(QME)描述了带有线性捕获链中的拉曼梁的两倍大门。 QME结合了单人离子两光子的有效狂犬频率,自动镇和振动bloch-siegert能量转移,非呼声过渡,拉曼和雷利散射,激光功率波动,动力加热,越过的,交叉的声音旋转状态,激光漏洞,无与伦比的启动型启动型启动参数和启动参数均与启动型启动型和启动,并构成了启动量的启动,并有用的是启动型号和启动型号。而最先进的方法在门设计过程中忽略了这些效果。我们采用全局优化来设计脉冲序列,以实现七个被困的$^{171} $ yb $^{+} $ ions的稳定快速两数Qubit Gate,通过在数值集成的QME解决方案上进行优化。在这里,鲁棒意味着反对运动频率缓慢漂移的弹性,而快速的栅极执行是有效的狂犬频率与从离子的裸露电子过渡中引起的激光器相当的。我们的稳健量子控制在长离子链中提供了快速的高质量两倍大门,从而实现了可扩展的量子计算,并具有被捕获的离子。
Two-qubit gate performance is vital for scaling up ion-trap quantum computing. Optimized quantum control is needed to achieve reductions in gate-time and gate error-rate. We describe two-qubit gates with addressed Raman beams within a linear trapped-ion chain by a quantum master equation (QME). The QME incorporates the single-ion two-photon effective Rabi frequency, Autler-Townes and vibrational Bloch-Siegert energy shifts, off-resonant transitions, Raman and Rayleigh scattering, laser-power fluctuations, motional heating, cross-Kerr phonon coupling, laser spillover, asymmetric addressing beams and an imperfect initial motional ground state, with no fitting parameters. Whereas state-of-the-art methods are oblivious to these effects in the gate design procedure. We employ global optimization to design pulse sequences for achieving a robust rapid two-qubit gate for seven trapped $^{171}$Yb$^{+}$ ions by optimizing over numerically integrated QME solutions. Here, robust means resilient against slow drift of motional frequencies, and rapid means gate execution where the effective Rabi frequency is comparable to the detuning of the laser from the ion's bare electronic transition. Our robust quantum control delivers rapid high-quality two-qubit gates in long ion chains, enabling scalable quantum computing with trapped ions.