Abstract
AbstractHydrophobic zeolites are nanoporous materials that are attracting an increasing interest, especially for catalysis, desalination, energy storage and biomedical applications. Nevertheless, a more profound understanding and control of water infiltration in their nanopores is still desirable to rationally design zeolite-based materials with tailored properties. In this work, both atomistic simulations and previous experimental data are employed to investigate water infiltration in hydrophobic MFI zeolites with different concentration of hydrophilic defects. Results show that limited concentrations of defects (e.g. 1%) induce a change in the shape of infiltration isotherms (from type-V to type-I), which denotes a sharp passage from typical hydrophobic to hydrophilic behavior. A correlation parametrized on both energy and geometric characteristics of the zeolite (infiltration model) is then adopted to interpolate the infiltration isotherms data by means of a limited number of physically-meaningful parameters. Finally, the infiltration model is combined with the water-zeolite interaction energy computed by simulations to correlate the water intrusion mechanism with the atomistic details of the zeolite crystal, such as defects concentration, distribution and hydrophilicity. The suggested methodology may allow a faster (more than one order of magnitude) and more systematic preliminary computational screening of innovative zeolite-based materials for energy storage, desalination and biomedical purposes.
Funder
Compagnia di San Paolo
MIT-KFUPM Center for Clean Energy and Water.
Publisher
Springer Science and Business Media LLC
Reference73 articles.
1. Karbowiak, T., Paulin, C., Ballandras, A., Weber, G. & Bellat, J.-P. Thermal effects of water intrusion in hydrophobic nanoporous materials. Journal of the American Chemical Society 131, 9898–9899 (2009).
2. Chiavazzo, E., Fasano, M., Asinari, P. & Decuzzi, P. Scaling behaviour for the water transport in nanoconfined geometries. Nature communications 5, 4495 (2014).
3. Chandler, D. Hydrophobicity: Two faces of water. Nature 417, 491–491 (2002).
4. Smirnov, S., Vlassiouk, I., Takmakov, P. & Rios, F. Water confinement in hydrophobic nanopores. Pressure-induced wetting and drying. ACS nano 4, 5069–5075 (2010).
5. Eroshenko, V., Regis, R.-C., Soulard, M. & Patarin, J. Energetics: A new field of applications for hydrophobic zeolites. Journal of the American Chemical Society 123, 8129–8130 (2001).
Cited by
13 articles.
订阅此论文施引文献
订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献