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The microscopic structure of cold aqueous methanol mixtures
Martina Požar1, Ariadni Kerasidou2, Bernarda Lovrinčević3
1Laboratoire de Physique Théorique de la Matière Condensée (UMR CNRS 7600),Université Pierre et Marie Curie, 4 Place Jussieu, F75252 Paris cedex 05, France.
Aqueous methanol mixtures form segregated clusters at low temperatures, with water forming linear chains and methanol becoming monomeric. This unique structure arises from distinct water and methanol domain segregation.
Area of Science:
- Physical Chemistry
- Materials Science
- Chemical Physics
Background:
- Aqueous alcohol mixtures exhibit complex micro-segregated structures.
- Understanding these structures is crucial for predicting mixture properties.
- Previous studies often focused on bulkier water domains in similar mixtures.
Purpose of the Study:
- To investigate the micro-segregation evolution in aqueous methanol mixtures.
- To analyze structural changes from 300 K down to 120 K.
- To elucidate the role of temperature and concentration on cluster formation.
Main Methods:
- Utilized computer simulations for static structural analysis.
- Examined the oxygen-oxygen structure factor to identify heterogeneity.
- Calculated Kirkwood-Buff integrals to assess concentration fluctuations.
Main Results:
- Structural heterogeneity of water increases at lower temperatures, indicated by a pre-peak.
- Water forms predominantly chain-like clusters at lower temperatures and concentrations.
- Methanol domains maintain a chain-like structure at high concentrations, becoming monomeric at lower ones.
- Concentration fluctuations decrease with temperature, leading to quasi-ideal Kirkwood-Buff integrals.
Conclusions:
- Domain segregation in aqueous methanol is driven by linear water clusters.
- This linear water clustering differs from bulkier domains observed in other alcohol-water mixtures.
- The findings offer new insights into the micro-heterogeneous nature of aqueous methanol.
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