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Versatile microwave-driven trapped ion spin system for quantum information processing

机译:多功能微波驱动的离子阱自旋系统用于量子信息处理

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摘要

Using trapped atomic ions, we demonstrate a tailored and versatile effective spin system suitable for quantum simulations and universal quantum computation. By simply applying microwave pulses, selected spins can be decoupled from the remaining system and, thus, can serve as a quantum memory, while simultaneously, other coupled spins perform conditional quantum dynamics. Also, microwave pulses can change the sign of spin-spin couplings, as well as their effective strength, even during the course of a quantum algorithm. Taking advantage of the simultaneous long-range coupling between three spins, a coherent quantum Fourier transform—an essential building block for many quantum algorithms—is efficiently realized. This approach, which is based on microwave-driven trapped ions and is complementary to laser-based methods, opens a new route to overcoming technical and physical challenges in the quest for a quantum simulator and a quantum computer.
机译:使用捕获的原子离子,我们展示了一种量身定制且通用的有效自旋系统,适用于量子模拟和通用量子计算。通过简单地施加微波脉冲,可以将所选的自旋与其余系统解耦,从而可以用作量子存储器,同时,其他耦合的自旋可以执行条件量子动力学。同样,即使在量子算法过程中,微波脉冲也会改变自旋-自旋耦合的符号及其有效强度。利用三个自旋之间同时进行的远程耦合,可以有效地实现相干量子傅里叶变换(许多量子算法的基本组成部分)。这种方法基于微波驱动的捕获离子,并且是基于激光的方法的补充,为寻求量子模拟器和量子计算机开辟了一条克服技术和物理挑战的新途径。

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