Search engine for discovering works of Art, research articles, and books related to Art and Culture
ShareThis
Javascript must be enabled to continue!

How Good Are Polarizable and Flexible Models for Water: Insights from a Many-Body Perspective

View through CrossRef
We present a systematic analysis of state-of-the-art polarizable and flexible water models from a many-body perspective, with a specific focus on their ability to represent the Born-Oppenheimer potential energy surface of water, from the gas to the liquid phase. Using coupled cluster data in the completed basis set limit as a reference, we examine the accuracy of the polarizable models in reproducing individual many-body contributions to interaction energies and harmonic frequencies of water clusters, and compare their performance with that of MB-pol, an explicit many-body model that has been shown to correctly predict the properties of water across the entire phase diagram. Based on these comparisons, we use MB-pol as a reference to analyze the ability of the polarizable models to reproduce the energy landscape of liquid water at ambient conditions. We find that, while correctly reproducing the energetics of minimum-energy structures, the polarizable models examined in this study suffer from inadequate representations of many-body effects for distorted configurations. To investigate the role played by geometry-dependent representations of 1-body charge distributions in reproducing coupled cluster data for both interaction and many-body energies, we introduce a simplified version of MB-pol that adopts fixed atomic charges and demonstrate that the new model retains the same accuracy as the original MB-pol model. Based on the analyses presented in this study, we believe that future developments of both polarizable and explicit many-body models should continue in parallel and would benefit from synergistic efforts aimed at integrating the best aspects of the two theoretical/computational frameworks.
American Chemical Society (ACS)
Title: How Good Are Polarizable and Flexible Models for Water: Insights from a Many-Body Perspective
Description:
We present a systematic analysis of state-of-the-art polarizable and flexible water models from a many-body perspective, with a specific focus on their ability to represent the Born-Oppenheimer potential energy surface of water, from the gas to the liquid phase.
Using coupled cluster data in the completed basis set limit as a reference, we examine the accuracy of the polarizable models in reproducing individual many-body contributions to interaction energies and harmonic frequencies of water clusters, and compare their performance with that of MB-pol, an explicit many-body model that has been shown to correctly predict the properties of water across the entire phase diagram.
Based on these comparisons, we use MB-pol as a reference to analyze the ability of the polarizable models to reproduce the energy landscape of liquid water at ambient conditions.
We find that, while correctly reproducing the energetics of minimum-energy structures, the polarizable models examined in this study suffer from inadequate representations of many-body effects for distorted configurations.
To investigate the role played by geometry-dependent representations of 1-body charge distributions in reproducing coupled cluster data for both interaction and many-body energies, we introduce a simplified version of MB-pol that adopts fixed atomic charges and demonstrate that the new model retains the same accuracy as the original MB-pol model.
Based on the analyses presented in this study, we believe that future developments of both polarizable and explicit many-body models should continue in parallel and would benefit from synergistic efforts aimed at integrating the best aspects of the two theoretical/computational frameworks.

Related Results

Tijelo u opusu Janka Polića Kamova
Tijelo u opusu Janka Polića Kamova
The doctoral disertation is dedicated to the concept of the body in the works of Janko Polić Kamov. The body is approached as a signifier system on the basis of which numerous and ...
[RETRACTED] Prima Weight Loss Dragons Den UK v1
[RETRACTED] Prima Weight Loss Dragons Den UK v1
[RETRACTED]Prima Weight Loss Dragons Den UK :-Obesity is a not kidding medical issue brought about by devouring an excessive amount of fat, eating terrible food sources, and practi...
[RETRACTED] Prima Weight Loss Dragons Den UK v1
[RETRACTED] Prima Weight Loss Dragons Den UK v1
[RETRACTED]Prima Weight Loss Dragons Den UK :-Obesity is a not kidding medical issue brought about by devouring an excessive amount of fat, eating terrible food sources, and practi...
[RETRACTED] Keto Burn DX - (Works Or Hoax) Check Here All Improtant Keto Burn DX Details! MELT FAT FAST v1
[RETRACTED] Keto Burn DX - (Works Or Hoax) Check Here All Improtant Keto Burn DX Details! MELT FAT FAST v1
[RETRACTED]Keto Burn DX Review 2022 – Does it Really Work?Warning | Weight Loss Diet | Price | Get 2 Free Bottles! ➢ Product Name – Keto Burn DX ➢ Location – United States (USA) ➢...
[RETRACTED] ACV Super Slim Gummies Reviews Scam Or Legit Updated 2022 – Must-See Worth Buying? v1
[RETRACTED] ACV Super Slim Gummies Reviews Scam Or Legit Updated 2022 – Must-See Worth Buying? v1
[RETRACTED]➪ACV Super Slim Gummies - Official Website Link - Click Here To Buy❤️ ✪Product Name ➯ ACV Super Slim Gummies UK✪Main Benefits ➯ Can help you with all your overweight i...
[RETRACTED] ACV Super Slim Gummies Reviews Scam Or Legit Updated 2022 – Must-See Worth Buying? v1
[RETRACTED] ACV Super Slim Gummies Reviews Scam Or Legit Updated 2022 – Must-See Worth Buying? v1
[RETRACTED]➪ACV Super Slim Gummies - Official Website Link - Click Here To Buy❤️ ✪Product Name ➯ ACV Super Slim Gummies UK✪Main Benefits ➯ Can help you with all your overweight i...
A fast polarizable water model for atomistic simulations.
A fast polarizable water model for atomistic simulations.
Simulating water accurately has been a major challenge in atomistic simulations for decades. Inclusion of electronic polarizability effects holds considerable promise, yet existing...

Back to Top