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Indistinguishability and interference in the coherent control of atomic and molecular processes

机译:原子和分子过程相干控制中的不可区分性和干扰

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摘要

The subtle and fundamental issue of indistinguishability and interference between independent pathways to the same target state is examined in the context of coherent control of atomic and molecular processes, with emphasis placed on possible “which-way” information due to quantum entanglement established in the quantum dynamics. Because quantum interference between independent pathways to the same target state occurs only when the independent pathways are indistinguishable, it is first shown that creating useful coherence between nondegenerate states of a molecule for subsequent quantum interference manipulation cannot be achieved by collisions between atoms or molecules that are prepared in momentum and energy eigenstates. Coherence can, however, be transferred from light fields to atoms or molecules. Using a particular coherent control scenario, it is shown that this coherence transfer and the subsequent coherent phase control can be readily realized by the most classical states of light, i.e., coherent states of light. It is further demonstrated that quantum states of light may suppress the extent of phase-sensitive coherent control by leaking out some which-way information while “incoherent interference control” scenarios proposed in the literature have automatically ensured the indistinguishability of multiple excitation pathways. The possibility of quantum coherence in photodissociation product states is also understood in terms of the disentanglement between photodissociation fragments. Results offer deeper insights into quantum coherence generation in atomic and molecular processes.
机译:在原子和分子过程的相干控制的背景下,研究了难以区分和对相同目标状态的独立途径之间的干扰所产生的微妙和根本性问题,重点放在由于量子中建立的量子纠缠而可能产生的“双向”信息动力学。由于只有在独立路径无法区分时,独立路径之间才能达到相同的目标状态,因此首先证明了在分子的非简并态之间建立有用的相干性以进行后续的量子干扰操作,这是无法通过原子或分子之间的碰撞来实现的。准备动量和能量本征态。但是,相干性可以从光场转移到原子或分子。使用特定的相干控制场景,表明该相干转移和随后的相干相位控制可以通过最经典的光状态,即相干光状态容易地实现。进一步证明,光的量子态可以通过泄漏某些方向信息来抑制相敏相干控制的程度,而文献中提出的“非相干干涉控制”场景则自动确保了多个激发路径的不可区分性。还可以根据光解离片段之间的解缠来理解光解产物状态中量子相干的可能性。结果为原子和分子过程中的量子相干性生成提供了更深刻的见解。

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