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Methods of Ex Situ and In Situ Investigations of Structural Transformations: The Case of Crystallization of Metallic Glasses
Published on: June 7, 2018
Thermal transformations and dissociations in polycrystalline CO2hydrates
Xinheng Li1, Yongxiao Qu2, Yuan Li2
1Physics, Xiamen University, Physics Building 358, Haiyun campus, Xiamen University, Xiamen, Fujian, 361005, CHINA.
Carbon dioxide (CO2) hydrate stability is key for sequestration and natural gas recovery. This study reveals how heating causes cage transformations and dissociation in CO2 hydrates using simulations and machine learning.
Area of Science:
- Materials Science
- Physical Chemistry
- Computational Chemistry
Background:
- Carbon dioxide (CO2) hydrates are crucial for CO2 sequestration and natural gas recovery.
- The stability of CO2 hydrates is paramount for their practical applications.
Purpose of the Study:
- To investigate the thermal dissociation and cage transformations in polycrystalline CO2 hydrates.
- To establish machine learning frameworks for predicting CO2 hydrate dissociation behavior.
Main Methods:
- High-throughput molecular dynamics simulations.
- Machine learning (ML) models.
- Analysis of cage structures and transformations.
Main Results:
- Melting points of CO2 hydrates are determined by predominant microstructural cages (5^12, 5^12 6^2, 4^1 5^10 6^3).
- Heating induces a reduction in clathrate cages and large-scale reformations via 28 types of cage transformations.
- Water molecule dynamics (removal, insertion, rotation) drive cage transformations, with specific cages (5^12, 5^12 6^2, 4^1 5^10 6^3, 4^1 5^10 6^2) being frequently involved.
Conclusions:
- Thermal dissociation of CO2 hydrates involves extensive, mechanism-driven cage transformations.
- Machine learning frameworks can effectively predict melting points and dynamics of CO2 hydrate dissociation.
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