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纯单分子离子量子态的制备和相干操控。

Preparation and coherent manipulation of pure quantum states of a single molecular ion.

机构信息

Time and Frequency Division, National Institute of Standards and Technology, Boulder, Colorado 80305, USA.

Institute of Catalysis Research and Technology, Karlsruhe Institute of Technology, Karlsruhe, Germany.

出版信息

Nature. 2017 May 10;545(7653):203-207. doi: 10.1038/nature22338.

Abstract

Laser cooling and trapping of atoms and atomic ions has led to advances including the observation of exotic phases of matter, the development of precision sensors and state-of-the-art atomic clocks. The same level of control in molecules could also lead to important developments such as controlled chemical reactions and sensitive probes of fundamental theories, but the vibrational and rotational degrees of freedom in molecules pose a challenge for controlling their quantum mechanical states. Here we use quantum-logic spectroscopy, which maps quantum information between two ion species, to prepare and non-destructively detect quantum mechanical states in molecular ions. We develop a general technique for optical pumping and preparation of the molecule into a pure initial state. This enables us to observe high-resolution spectra in a single ion (CaH) and coherent phenomena such as Rabi flopping and Ramsey fringes. The protocol requires a single, far-off-resonant laser that is not specific to the molecule, so many other molecular ions, including polyatomic species, could be treated using the same methods in the same apparatus by changing the molecular source. Combined with the long interrogation times afforded by ion traps, a broad range of molecular ions could be studied with unprecedented control and precision. Our technique thus represents a critical step towards applications such as precision molecular spectroscopy, stringent tests of fundamental physics, quantum computing and precision control of molecular dynamics.

摘要

激光冷却和俘获原子和离子,使得包括奇异物质相的观察、精密传感器和最先进的原子钟的发展在内的一系列进展成为可能。如果在分子中实现相同水平的控制,也可能会带来一些重要的发展,例如可控化学反应和对基本理论的敏感探测,但分子中的振动和转动自由度对控制其量子力学状态构成了挑战。在这里,我们使用量子逻辑光谱学,将两种离子之间的量子信息进行映射,从而在分子离子中制备和非破坏性地探测量子力学状态。我们开发了一种用于光学泵浦和将分子制备到纯初始态的通用技术。这使我们能够在单个离子(CaH)中观察到高分辨率光谱,并观察到诸如拉比翻转和拉姆齐条纹等相干现象。该协议仅需要一个非共振的远场激光,且该激光不特定于分子,因此通过改变分子源,可以使用相同的方法和相同的设备来处理许多其他分子离子,包括多原子分子。结合离子阱提供的长时间询问时间,我们可以使用前所未有的控制和精度来研究广泛的分子离子。因此,我们的技术是实现精密分子光谱学、基础物理严格检验、量子计算和分子动力学精密控制等应用的关键一步。

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