Papers
Topics
Authors
Recent
Assistant
AI Research Assistant
Well-researched responses based on relevant abstracts and paper content.
Custom Instructions Pro
Preferences or requirements that you'd like Emergent Mind to consider when generating responses.
Gemini 2.5 Flash
Gemini 2.5 Flash 54 tok/s
Gemini 2.5 Pro 54 tok/s Pro
GPT-5 Medium 22 tok/s Pro
GPT-5 High 25 tok/s Pro
GPT-4o 99 tok/s Pro
Kimi K2 196 tok/s Pro
GPT OSS 120B 333 tok/s Pro
Claude Sonnet 4.5 34 tok/s Pro
2000 character limit reached

Propensity of water self-ions at air(oil)-water interfaces revealed by deep potential molecular dynamics with enhanced sampling (2404.07027v3)

Published 10 Apr 2024 in physics.chem-ph and physics.comp-ph

Abstract: The preference of water self-ions (hydronium and hydroxide) towards air/oil-water interfaces is one of the hottest topics in water research due to its importance for understanding properties, phenomena, and reactions of interfaces. In this work, we performed enhanced-sampling molecular dynamics simulations based on state-of-the-art neural network potentials with approximate M06-2X accuracy to investigate the propensity of hydronium and hydroxide ions at air/oil(decane)-water interfaces, which can simultaneously describe well the water autoionization process forming these ions, recombination of ions, and ionic distribution along the normal distance to the interface by employing a set of appropriate Voronoi collective variables. A stable ionic double-layer distribution is observed near the air-water interface, while the distribution is different at oil-water interfaces, where hydronium tends to be repelled from the interface into the bulk water, whereas hydroxide, with an interfacial stabilization free energy of -0.6 kcal/mol, is enriched in the interfacial layer. Through simulations of oil droplets in water, we further reveal that the interfacial propensity of hydroxide ions is caused by the positive charge distribution of the oil-water interface contributed by hydrogens of the dangling OH bonds of interfacial water layer and the outmost layer decane molecules laying flat on the droplet. The present results may aid in understanding the acid-base nature of water interfaces with wide applications.

Definition Search Book Streamline Icon: https://streamlinehq.com
References (10)
  1. Chamberlayne, C. F.; Zare, R. N. Simple model for the electric field and spatial distribution of ions in a microdroplet. The Journal of chemical physics 2020, 152
  2. de la Puente, M.; Laage, D. How the Acidity of Water Droplets and Films Is Controlled by the Air–Water Interface. Journal of the American Chemical Society 2023,
  3. Zhang, P.; Feng, M.; Xu, X. Double-layer distribution of hydronium and hydroxide ions in the air-water interface. ACS Physical Chemistry Au 2024,
  4. Zhang, P.; Gardini, A. T.; Xu, X.; Parrinello, M. Intramolecular and water mediated tautomerism of solvated glycine. Journal of Chemical Information and Modeling 2024,
  5. Villard, J.; Bircher, M. P.; Rothlisberger, U. Structure and dynamics of liquid water from ab initio simulations: Adding Minnesota density functionals to Jacob’s ladder. Chemical Science 2024,
  6. Zeng, J.; Zhang, D.; Lu, D.; Mo, P.; Li, Z.; Chen, Y.; Rynik, M.; Huang, L.; Li, Z.; Shi, S.; others DeePMD-kit v2: A software package for deep potential models. The Journal of Chemical Physics 2023, 159
  7. de Grotthuss, C. J. T. Mémoire sur la Décomposition de l’Eau et des Corps qu’elle Tient en Dissolution à l’Aide de l’Électricité Galvanique. Ann. Chim. 1806, 54–74
  8. Inoue, K.-i.; Nihonyanagi, S.; Singh, P. C.; Yamaguchi, S.; Tahara, T. 2D heterodyne-detected sum frequency generation study on the ultrafast vibrational dynamics of H22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTO and HOD water at charged interfaces. The Journal of Chemical Physics 2015, 142
  9. Litman, Y.; Chiang, K.-Y.; Seki, T.; Nagata, Y.; Bonn, M. Surface stratification determines the interfacial water structure of simple electrolyte solutions. Nature Chemistry 2024, 1–7
  10. Chen, X.; Xia, Y.; Wu, Y.; Xu, Y.; Jia, X.; Zare, R. N.; Wang, F. Sprayed Oil–Water Microdroplets as a Hydrogen Source. Journal of the American Chemical Society 2024,

Summary

We haven't generated a summary for this paper yet.

Lightbulb Streamline Icon: https://streamlinehq.com

Continue Learning

We haven't generated follow-up questions for this paper yet.

List To Do Tasks Checklist Streamline Icon: https://streamlinehq.com

Collections

Sign up for free to add this paper to one or more collections.

Github Logo Streamline Icon: https://streamlinehq.com
X Twitter Logo Streamline Icon: https://streamlinehq.com

Tweets

This paper has been mentioned in 1 post and received 3 likes.

Don't miss out on important new AI/ML research

See which papers are being discussed right now on X, Reddit, and more:

“Emergent Mind helps me see which AI papers have caught fire online.”

Philip

Philip

Creator, AI Explained on YouTube