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Quantum Decoherence Mechanism in Atom-Molecule - Collisions: NO + Ar Case Study

机译:原子分子中量子脱机机制 - 碰撞:否+ AR案例研究

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In modern physics, quantum decoherence, a subject still under debate, is viewed as the mechanism responsible for the quantum -to-classical transition as the initially prepared quantum state interacts with its environment in an irreversible manner. As expected, one of the most common mechanisms responsible of the macroscopically observed decoherence involves collisions of an atom or molecule, initially prepared in a coherent superposition of states, with gas particles. In this work, a coherent superposition of quantum internal states of NO molecules is prepared by the interaction between the molecule with both a static and a radiofrequency electric field. Subsequently, NO + Ar collision decoherence experiments, are investigated by measuring the loss of coherence as a function of the number of collisions. Data analysis in the light of the interaction potential of the collisional partners allowed us to unravel the molecular mechanisms responsible for the loss of coherence in the prepared NO quantum superposition of internal states. The relevance of the present work relies on several aspects. On the one hand, the use of radio-waves introduces a new way for the production of coherent beams. On the other hand, the employed methodology, when satisfactorily applied to more collision systems, could be useful in designing experiments to reduce the environmental decoherence rate to levels necessary for quantum information processes.
机译:在现代物理学中,仍然在辩论中的一个受试者的昆腾破坏,被视为负责量子 - 古典转型的机制,因为最初制备的量子状态以不可逆的方式与其环境相互作用。正如预期的那样,负责宏观观测的脱机的最常见机制之一涉及原子或分子的碰撞,最初在状态的相干叠加中制备气体颗粒。在这项工作中,通过静态和射频电场之间的分子与分子之间的相互作用来制备量子内部状态的相干叠加。随后,通过测量作为碰撞次数的函数来研究不损失的丧失+ AR碰撞堵塞实验。根据碰撞伙伴的相互作用潜力的数据分析使我们允许我们解开负责的分子机制,该机制负责在制备的NOUMUL叠加的内部状态下的相干性丧失。目前工作的相关性依赖于几个方面。一方面,使用射频引入了一种产生相干光束的新方法。另一方面,当令人满意地应用于更多碰撞系统时,所采用的方法可用于设计实验,以将环境变阻率降低到量子信息过程所需的水平。

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