Deconstructing the Origins of Interfacial Catalysis: Why Electric Fields are Inseparable from Solvation

Fuente: arXiv
Saved in:
Bibliographic Details
Main Authors: Di Pino, Solana, Banerjee, Debarshi, Monti, Marta, Miron, Gonzalo Diaz, Cassone, Giuseppe, Hassanali, Ali
Format: Preprint
Published: 2025
Subjects:
Online Access:
Tags: Add Tag
No Tags, Be the first to tag this record!
_version_ 1866909866808836096
author Di Pino, Solana
Banerjee, Debarshi
Monti, Marta
Miron, Gonzalo Diaz
Cassone, Giuseppe
Hassanali, Ali
author_facet Di Pino, Solana
Banerjee, Debarshi
Monti, Marta
Miron, Gonzalo Diaz
Cassone, Giuseppe
Hassanali, Ali
contents In the last decade, there has been a surge of experiments showing that certain chemical reactions undergo an enormous boost when taken from bulk aqueous conditions to microdroplet environments. The microscopic basis of this phenomenon remains elusive and continues to be widely debated. One of the key driving forces invoked are the specific properties of the air-water interface including the presence of large electric fields and distinct solvation at the surface. Here, using a combination of classical molecular dynamics simulations, the chemical physics of solvation, and unsupervised learning approaches, we place these assumptions under close scrutiny. Using phenol as a model system, we demonstrate that the electric field at the surface of water is not anomalous or unique compared to bulk water conditions. Furthermore, the electric field fluctuations de-correlate on a timescale of ~10 ps implying that their role in activating much slower chemical reactions remains inconclusive. We deploy a recently developed unsupervised learning approach, dubbed information balance, which detects in an agnostic fashion the relationship between the electric field and solvation collective variables. It turns out that the electric field on the hydroxyl group of the phenol is mostly determined by phenol hydration including the proximity and orientation of nearby water molecules. We caution that the growing attention of the role that electric fields have garnered in enhancing chemical reactivity at the air-water interface, may not reflect their actual importance.
format Preprint
id arxiv_https___arxiv_org_abs_2506_23988
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Deconstructing the Origins of Interfacial Catalysis: Why Electric Fields are Inseparable from Solvation
Di Pino, Solana
Banerjee, Debarshi
Monti, Marta
Miron, Gonzalo Diaz
Cassone, Giuseppe
Hassanali, Ali
Chemical Physics
Other Condensed Matter
In the last decade, there has been a surge of experiments showing that certain chemical reactions undergo an enormous boost when taken from bulk aqueous conditions to microdroplet environments. The microscopic basis of this phenomenon remains elusive and continues to be widely debated. One of the key driving forces invoked are the specific properties of the air-water interface including the presence of large electric fields and distinct solvation at the surface. Here, using a combination of classical molecular dynamics simulations, the chemical physics of solvation, and unsupervised learning approaches, we place these assumptions under close scrutiny. Using phenol as a model system, we demonstrate that the electric field at the surface of water is not anomalous or unique compared to bulk water conditions. Furthermore, the electric field fluctuations de-correlate on a timescale of ~10 ps implying that their role in activating much slower chemical reactions remains inconclusive. We deploy a recently developed unsupervised learning approach, dubbed information balance, which detects in an agnostic fashion the relationship between the electric field and solvation collective variables. It turns out that the electric field on the hydroxyl group of the phenol is mostly determined by phenol hydration including the proximity and orientation of nearby water molecules. We caution that the growing attention of the role that electric fields have garnered in enhancing chemical reactivity at the air-water interface, may not reflect their actual importance.
title Deconstructing the Origins of Interfacial Catalysis: Why Electric Fields are Inseparable from Solvation
topic Chemical Physics
Other Condensed Matter
url https://arxiv.org/abs/2506.23988