Quantum suppression of cold reactions far from the s-wave energy limit

Fuente: arXiv
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Hauptverfasser: Katz, Or, Pinkas, Meirav, Akerman, Nitzan, Li, Ming, Ozeri, Roee
Format: Preprint
Veröffentlicht: 2022
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author Katz, Or
Pinkas, Meirav
Akerman, Nitzan
Li, Ming
Ozeri, Roee
author_facet Katz, Or
Pinkas, Meirav
Akerman, Nitzan
Li, Ming
Ozeri, Roee
contents Quantum effects in chemical reactions are most pronounced at ultracold temperatures, where only a few partial waves contribute. While interference among many partial waves is theoretically expected to persist at higher temperatures, direct evidence for such quantum effects in reactive processes has been lacking. Here, we report the first observation of quantum interference suppressing a chemical reaction in the multi-partial-wave regime: resonant charge exchange between a single $^{87}$Rb atom and its parent ion $^{87}$Rb$^+$. Using quantum-logic detection on a single atom-ion pair and a calibrated in-situ measurement of Langevin collision probabilities, we benchmark the thermally averaged reaction rate against both classical and quantum predictions. We find that the reaction rate is suppressed by over an order of magnitude relative to the classical expectation, despite occurring in the millikelvin temperature regime (more than three orders of magnitude above the $s$-wave threshold), where more than a dozen partial waves contribute. These results establish quantum interference as a key mechanism in chemical reactivity beyond the ultracold limit and offer a platform for probing coherent quantum effects in atom-ion reactions where \textit{ab initio} methods remain intractable.
format Preprint
id arxiv_https___arxiv_org_abs_2208_07725
institution arXiv
publishDate 2022
record_format arxiv
spellingShingle Quantum suppression of cold reactions far from the s-wave energy limit
Katz, Or
Pinkas, Meirav
Akerman, Nitzan
Li, Ming
Ozeri, Roee
Quantum Physics
Atomic Physics
Chemical Physics
Quantum effects in chemical reactions are most pronounced at ultracold temperatures, where only a few partial waves contribute. While interference among many partial waves is theoretically expected to persist at higher temperatures, direct evidence for such quantum effects in reactive processes has been lacking. Here, we report the first observation of quantum interference suppressing a chemical reaction in the multi-partial-wave regime: resonant charge exchange between a single $^{87}$Rb atom and its parent ion $^{87}$Rb$^+$. Using quantum-logic detection on a single atom-ion pair and a calibrated in-situ measurement of Langevin collision probabilities, we benchmark the thermally averaged reaction rate against both classical and quantum predictions. We find that the reaction rate is suppressed by over an order of magnitude relative to the classical expectation, despite occurring in the millikelvin temperature regime (more than three orders of magnitude above the $s$-wave threshold), where more than a dozen partial waves contribute. These results establish quantum interference as a key mechanism in chemical reactivity beyond the ultracold limit and offer a platform for probing coherent quantum effects in atom-ion reactions where \textit{ab initio} methods remain intractable.
title Quantum suppression of cold reactions far from the s-wave energy limit
topic Quantum Physics
Atomic Physics
Chemical Physics
url https://arxiv.org/abs/2208.07725