Determination and evaluation of the nonadditivity in wetting of molecularly heterogeneous surfaces
Autor: | Anna Murello, Aurel Radulescu, Michele Ceriotti, Zhi Luo, Sylvie Roke, Quy Khac Ong, Filip Kovacik, Joachim Kohlbrecher, Francesco Stellacci, David M. Wilkins, Halil I. Okur |
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Jazyk: | angličtina |
Rok vydání: | 2019 |
Předmět: |
Surface (mathematics)
Work (thermodynamics) Materials science nanostructured Hydration Wetting 02 engineering and technology 010402 general chemistry 01 natural sciences Molecule Point (geometry) Water density hydrophobic General hydrophobicity wetting Multidisciplinary behavior Physics Adhesion 021001 nanoscience & nanotechnology Hydrophobic proteins 0104 chemical sciences Effective diameter modulation Chemical physics Physical Sciences ddc:500 ligand shell 0210 nano-technology Nanostructured hydration |
Zdroj: | Proceedings of the National Academy of Sciences of the United States of America 116(51), 25516-25523 (2019). doi:10.1073/pnas.1916180116 Luo, Z, Murello, A, Wilkins, D M, Kovacik, F, Kohlbrecher, J, Radulescu, A, Okur, H I, Ong, Q K, Roke, S, Ceriotti, M & Stellacci, F 2019, ' Determination and evaluation of the nonadditivity in wetting of molecularly heterogeneous surfaces ', Proceedings of the National Academy of Sciences of the United States of America, vol. 116, no. 51, pp. 25516-25523 . https://doi.org/10.1073/pnas.1916180116 Proceedings of the National Academy of Sciences of the United States of America Proceedings of the National Academy of Sciences |
DOI: | 10.1073/pnas.1916180116 |
Popis: | Significance Every folded protein presents an interface with water that is composed of domains of varying hydrophilicity/-phobicity. Many simulation studies have highlighted the nonadditivity in the wetting of such nanostructured surfaces in contrast with the accepted theoretical formula that is additive. We present here an experimental study on surfaces of identical composition but different organization of hydrophobic and hydrophilic domains. We prove that the interfacial energy of such surfaces differs by ∼20% and that a significant difference in the interfacial water H-bonding structure can be measured. As a result, in combination with molecular-dynamics simulations, we propose a model that captures the wetting of molecularly heterogeneous surfaces, showing the importance of local structure (first-nearest neighbors) in determining the wetting properties. The interface between water and folded proteins is very complex. Proteins have “patchy” solvent-accessible areas composed of domains of varying hydrophobicity. The textbook understanding is that these domains contribute additively to interfacial properties (Cassie’s equation, CE). An ever-growing number of modeling papers question the validity of CE at molecular length scales, but there is no conclusive experiment to support this and no proposed new theoretical framework. Here, we study the wetting of model compounds with patchy surfaces differing solely in patchiness but not in composition. Were CE to be correct, these materials would have had the same solid–liquid work of adhesion (WSL) and time-averaged structure of interfacial water. We find considerable differences in WSL, and sum-frequency generation measurements of the interfacial water structure show distinctively different spectral features. Molecular-dynamics simulations of water on patchy surfaces capture the observed behaviors and point toward significant nonadditivity in water density and average orientation. They show that a description of the molecular arrangement on the surface is needed to predict its wetting properties. We propose a predictive model that considers, for every molecule, the contributions of its first-nearest neighbors as a descriptor to determine the wetting properties of the surface. The model is validated by measurements of WSL in multiple solvents, where large differences are observed for solvents whose effective diameter is smaller than ∼6 Å. The experiments and theoretical model proposed here provide a starting point to develop a comprehensive understanding of complex biological interfaces as well as for the engineering of synthetic ones. |
Databáze: | OpenAIRE |
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