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Published on: August 23, 2018
A Systematic Protocol for Benchmarking Guest-Host Interactions by First-Principles Computations: Capturing CO2 in
Daniel J Arismendi-Arrieta1, Álvaro Valdés2, Rita Prosmiti1
1Institute of Fundamental Physics (IFF-CSIC), CSIC, Serrano 123, 28006, Madrid, Spain.
Carbon dioxide (CO2) clathrate hydrates are promising for greenhouse gas capture. First-principles calculations reveal dispersion forces are key to CO2 stabilization in cages, making encapsulation energetically favorable.
Area of Science:
- Computational Chemistry
- Materials Science
- Environmental Science
Background:
- Carbon dioxide (CO2) clathrate hydrates are investigated for greenhouse gas capture and storage.
- A complete molecular-level understanding of CO2 hydrate formation and properties is lacking.
- Accurate molecular modeling is crucial but computationally intensive for predicting hydrate properties.
Purpose of the Study:
- To investigate the nature of guest-host interactions in CO2 clathrate hydrates (sI, sII, sH cages).
- To assess the accuracy of different computational methods for modeling CO2 @H2 O interactions.
- To determine the energetic favorability and optimal orientation of CO2 encapsulation in clathrate cages.
Main Methods:
- Performed first-principles calculations for CO2 in sI, sII, and sH clathrate cages.
- Studied various density functionals and quantum approaches, including pairwise CO2 @H2 O potentials.
- Generated benchmark energies using distance-dependent datasets and proposed a protocol for assessing computational methods.
Main Results:
- Dispersion interactions significantly contribute to the stabilization energy of CO2 within clathrate cages.
- Encapsulation of CO2 into guest-free clathrate cages is consistently energetically favorable.
- Analyzed CO2 orientation within cages and discussed the accuracy of computational approaches for guest-host interactions.
Conclusions:
- First-principles calculations provide critical insights into CO2 clathrate hydrate interactions.
- Dispersion forces play a vital role in the stability of CO2 within clathrate structures.
- The findings guide the selection of accurate computational methods for future multiscale simulations of CO2 capture.
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