单分子离子的量子逻辑控制与光谱学

A. Collopy, D. Leibrandt, D. Leibfried, C. Chou
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引用次数: 0

摘要

量子逻辑使状态准备,读取和光谱的其他难以研究的离子。利用共捕获离子之间共享的耦合谐波运动,信息可以从“光谱”离子转移到易于操纵的“逻辑”离子。利用这种技术,我们利用Ca+离子作为我们的逻辑离子,在纯状态下对单个CaH+分子离子进行高分辨率太赫兹尺度的旋转光谱。CaH+和Ca+之间的纠缠态也已被证明,使分子离子成为量子信息处理混合系统的可能组成部分。由于我们对分子的所有激光操作都是驱动具有高失谐的受激拉曼跃迁,因此该技术有望推广到各种分子离子种类。此外,我们研究了陷阱射频电场在分子水平上的系统效应,并利用它来测量带电分子的偶极矩。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Quantum logic control and spectroscopy of a single molecular ion
Quantum logic enables state preparation, readout and spectroscopy of otherwise difficult-to-study ions. Using the coupled harmonic motion shared between co-trapped ions, information can be transferred from the "spectroscopy" ion to the easily manipulated "logic" ion. With this technique we perform high-resolution terahertz-scale rotational spectroscopy of a single CaH+ molecular ion in pure states by leveraging a Ca+ ion as our logic ion. Entangled states between a CaH+ and a Ca+ have also been demonstrated, making molecular ions possible components of hybrid systems for quantum information processing. Because all our laser operations on the molecule are driving stimulated Raman transitions with high detuning, the technique promises to be generalizable to a wide variety of molecular ion species. Additionally, we study the systematic effects of the trap RF electric field on molecular levels and use it to obtain a measurement of the dipole moment of the charged molecule.
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