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里德堡原子介导的极性分子相互作用:分子态条件量子门和个体寻址的工具。

Rydberg atom mediated polar molecule interactions: a tool for molecular-state conditional quantum gates and individual addressability.

机构信息

Department of Physics, University of Connecticut, Storrs, CT 06269, USA.

出版信息

Phys Chem Chem Phys. 2011 Oct 14;13(38):17115-21. doi: 10.1039/c1cp21476d. Epub 2011 Aug 24.

Abstract

We study the possibility to use interaction between a polar molecule in the ground electronic and vibrational state and a Rydberg atom to construct two-qubit gates between molecular qubits and to coherently control molecular states. A polar molecule within the electron orbit in a Rydberg atom can either shift the Rydberg state, or form a Rydberg molecule. Both the atomic shift and the Rydberg molecule states depend on the initial internal state of the polar molecule, resulting in molecular state dependent van der Waals or dipole-dipole interaction between Rydberg atoms. Rydberg atoms mediated interaction between polar molecules can be enhanced up to 10(3) times. We describe how the coupling between a polar molecule and a Rydberg atom can be applied to coherently control molecular states, and specifically, to individually address molecules in an optical lattice, and to non-destructively readout molecular qubits.

摘要

我们研究了利用处于基态电子和振动态的极性分子与里德伯原子之间的相互作用,构建分子量子比特之间的两量子比特门并实现分子态相干控制的可能性。处于里德伯原子电子轨道内的极性分子,要么改变里德伯态,要么形成里德伯分子。原子位移和里德伯分子态都取决于极性分子的初始内部状态,从而导致里德伯原子之间的分子态相关范德瓦尔斯或偶极-偶极相互作用。里德伯原子介导的极性分子相互作用可以增强到 10(3)倍。我们描述了如何将极性分子与里德伯原子的耦合应用于相干控制分子态,具体而言,如何在光学晶格中单独寻址分子,以及如何非破坏性地读出分子量子比特。

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