Interference of nuclear wavepackets in a pair of proton transfer reactions

Author:

Zhang Xinzi1ORCID,Schwarz Kyra N.1ORCID,Zhang Luhao1ORCID,Fassioli Francesca12,Fu Bo1,Nguyen Lucas Q.1,Knowles Robert R.1ORCID,Scholes Gregory D.1ORCID

Affiliation:

1. Department of Chemistry, Princeton University, Princeton, NJ 08544

2. Scuola Internazionale Superiore di Studi Avanzati, Trieste 34136, Italy

Abstract

Quantum mechanics revolutionized chemists’ understanding of molecular structure. In contrast, the kinetics of molecular reactions in solution are well described by classical, statistical theories. To reveal how the dynamics of chemical systems transition from quantum to classical, we study femtosecond proton transfer in a symmetric molecule with two identical reactant sites that are spatially apart. With the reaction launched from a superposition of two local basis states, we hypothesize that the ensuing motions of the electrons and nuclei will proceed, conceptually, in lockstep as a superposition of probability amplitudes until decoherence collapses the system to a product. Using ultrafast spectroscopy, we observe that the initial superposition state affects the reaction kinetics by an interference mechanism. With the aid of a quantum dynamics model, we propose how the evolution of nuclear wavepackets manifests the unusual intersite quantum correlations during the reaction.

Publisher

Proceedings of the National Academy of Sciences

Subject

Multidisciplinary

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