Exploring chemical reactions in a quantum degenerate gas of polar molecules via complex formation

Peiru He, T. Bilitewski, C. Greene, A. Rey
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引用次数: 2

Abstract

A recent experiment reported for the first time the preparation of a Fermi degenerate gas of polar molecules and observed a suppression of their chemical reaction rate compared to the one expected from a purely classical treatment. While it was hypothesized that the suppression in the ultracold regime had its roots in the Fermi statistics of the molecules, this argument is inconsistent with the fact that the Fermi pressure should set a lower bound for the chemical reaction rate. Therefore it can not be explained from standard two-body $p$-wave inelastic collisions. Here we develop a simple model of chemical reactions that occur via the formation and decay of molecular complexes. We indeed find that pure two-body molecule losses are unable to explain the observed suppression. Instead we extend our description beyond two-body physics by including effective complex-molecule interactions possible emerging from many-body and effective medium effects at finite densities and in the presence of trapping light. %Under this framework we observe that additional complex-molecule collisions, which manifest as a net three-body molecular interaction could give rise to the additional suppression. Although our effective model is able to quantitatively reproduce recent experimental observations, a detailed understanding of the actual physical mechanism responsible for these higher-order interaction processes is still pending.
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探索极性分子的量子简并气体中通过复合体形成的化学反应
最近的一项实验首次报道了极性分子的费米简并气体的制备,并观察到与纯经典处理相比,它们的化学反应速率受到抑制。虽然假设超冷状态下的抑制源于分子的费米统计,但这一论点与费米压力应为化学反应速率设定下限的事实不一致。因此不能用标准的二体p波非弹性碰撞来解释。在这里,我们开发了一个简单的化学反应模型,通过分子复合物的形成和衰变发生。我们确实发现纯粹的两体分子损失不能解释观察到的抑制。相反,我们将我们的描述扩展到两体物理之外,包括在有限密度和捕获光的存在下可能出现的有效复杂分子相互作用和有效介质效应。在这个框架下,我们观察到额外的复杂分子碰撞,表现为净三体分子相互作用,可以产生额外的抑制。虽然我们的有效模型能够定量地再现最近的实验观察,但对这些高阶相互作用过程的实际物理机制的详细理解仍然有待解决。
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