论文标题
超冷分子反应的状态对状态控制
State-to-state control of ultracold molecular reactions
论文作者
论文摘要
反应性系统的量子控制能够使用量子统计量来实现潜在相互作用势,新反应途径的打开以及反应速率改变反应速率的显微镜探针。但是,将这种控制扩展到反应结果的量子状态仍然具有挑战性。在这项工作中,我们通过核自旋程度实现了这一目标,这一结果依赖于整个反应过程中核自旋的保护。使用共振增强的多光子离子化光谱法研究了超低KRB分子之间双分子反应中形成的产物,我们发现该系统保留了对反应物的核旋转的近乎完美的记忆,这表现为对产物旋转状态的强率偏好。我们利用这种效果来改变这些产物状态的占用,通过将初始核自旋状态的相干叠加用外部磁场改变。这样,我们能够控制具有量子状态分辨率的双分子反应的输入和输出。这里证明的技术为研究反应途径,反应产物之间的量子纠缠和状态水平的超速反应动力学之间的量子干扰的可能性开辟了可能性。
Quantum control of reactive systems has enabled microscopic probes of underlying interaction potentials, the opening of novel reaction pathways, and the alteration of reaction rates using quantum statistics. However, extending such control to the quantum states of reaction outcomes remains challenging. In this work, we realize this goal through the nuclear spin degree of freedom, a result which relies on the conservation of nuclear spins throughout the reaction. Using resonance-enhanced multiphoton ionization spectroscopy to investigate the products formed in bimolecular reactions between ultracold KRb molecules, we find that the system retains a near-perfect memory of the reactants' nuclear spins, manifested as a strong parity preference for the rotational states of the products. We leverage this effect to alter the occupation of these product states by changing the coherent superposition of initial nuclear spin states with an external magnetic field. In this way, we are able to control both the inputs and outputs of a bimolecular reaction with quantum state resolution. The techniques demonstrated here open up the possibilities to study quantum interference between reaction pathways, quantum entanglement between reaction products, and ultracold reaction dynamics at the state-to-state level.