Department of Physics of Complex Systems, Weizmann Institute of Science, Rehovot 7610001, Israel.
Department of Condensed Matter Physics, Weizmann Institute of Science, Rehovot 7610001, Israel.
Phys Rev Lett. 2023 Jan 20;130(3):030602. doi: 10.1103/PhysRevLett.130.030602.
Entangling gates are an essential component of quantum computers. However, generating high-fidelity gates, in a scalable manner, remains a major challenge in all quantum information processing platforms. Accordingly, improving the fidelity and robustness of these gates has been a research focus in recent years. In trapped ions quantum computers, entangling gates are performed by driving the normal modes of motion of the ion chain, generating a spin-dependent force. Even though there has been significant progress in increasing the robustness and modularity of these gates, they are still sensitive to noise in the intensity of the driving field. Here we supplement the conventional spin-dependent displacement with spin-dependent squeezing, which creates a new interaction, that enables a gate that is robust to deviations in the amplitude of the driving field. We solve the general Hamiltonian and engineer its spectrum analytically. We also endow our gate with other, more conventional, robustness properties, making it resilient to many practical sources of noise and inaccuracies.
纠缠门是量子计算机的重要组成部分。然而,以可扩展的方式生成高保真度的门,仍然是所有量子信息处理平台中的主要挑战。因此,近年来提高这些门的保真度和鲁棒性一直是研究的重点。在囚禁离子量子计算机中,纠缠门是通过驱动离子链的运动模式来实现的,产生一个与自旋相关的力。尽管在提高这些门的鲁棒性和模块化方面已经取得了重大进展,但它们仍然对驱动场强度的噪声敏感。在这里,我们在传统的与自旋相关的位移上补充了与自旋相关的压缩,这产生了一种新的相互作用,使得门对驱动场幅度的偏差具有鲁棒性。我们解析地求解了一般的哈密顿量,并对其谱进行了工程设计。我们还赋予了我们的门其他更传统的鲁棒性特性,使其能够抵抗许多实际的噪声和不准确性源。