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Article

Membrane-Assisted Crystallization: A Molecular View of NaCl Nucleation and Growth

1
Department of Chemical Engineering, National Taiwan University, Taipei 106, Taiwan
2
Institute on Membrane Technology (ITM–CNR), Via P. BUCCI, cubo 17C, 87036 Rende, Italy
3
Department of Environmental and Chemical Engineering, University of Calabria, 87036 Rende, Italy
4
WCU Energy Engineering Department, Hanyang University, Seoul 133-791, Korea
5
Center of Excellence in Desalination Technology, King Abdulaziz University, Jeddah 21589, Saudi Arabia
6
Advanced Research Center for Green Materials Science and Technology, National Taiwan University, Taipei 106, Taiwan
*
Author to whom correspondence should be addressed.
Appl. Sci. 2018, 8(11), 2145; https://doi.org/10.3390/app8112145
Submission received: 6 October 2018 / Revised: 22 October 2018 / Accepted: 24 October 2018 / Published: 2 November 2018

Abstract

Membrane-assisted crystallization, aiming to induce supersaturation in a solution, has been successfully tested in the crystallization of ionic salts, low molecular organic acids, and proteins. Membrane crystallization is an emerging membrane process with the capability to simultaneously extract fresh water and valuable components from various streams. Successful application of crystallization for produced water treatment, seawater desalination, and salt recovery has been demonstrated. Recently, membrane crystallization has been developed to recover valuable minerals from highly concentrated solutions, since the recovery of high-quality minerals is expected to impact agriculture, pharmaceuticals, and household activities. In this work, molecular dynamics simulations were used to study the crystal nucleation and growth of sodium chloride in bulk and with hydrophobic polymer surfaces of polyvinylidene fluoride (PVDF) and polypropylene (PP) at a supersaturated concentration of salt. In parallel, membrane crystallization experiments were performed utilizing the same polymeric membranes in order to compare the experimental results with the computational ones. Moreover, the comparison in terms of nucleation time between the crystallization of sodium chloride (NaCl) using the traditional evaporation process and the membrane-assisted crystallization process was performed. Here, with an integrated experimental–computational approach, we demonstrate that the PVDF and PP membranes assist the crystal growth for NaCl, speeding up crystal nucleation in comparison to the bulk solution and leading to smaller and regularly structured face-centered cubic lattice NaCl crystals. This results in a mutual validation between theoretical data and experimental findings and provides the stimuli to investigate other mono and bivalent crystals with a new class of materials in advanced membrane separations.
Keywords: molecular simulation; computational chemistry; membrane-assisted crystallization; crystal growth; nucleation molecular simulation; computational chemistry; membrane-assisted crystallization; crystal growth; nucleation
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MDPI and ACS Style

Tsai, J.-H.; Perrotta, M.L.; Gugliuzza, A.; Macedonio, F.; Giorno, L.; Drioli, E.; Tung, K.-L.; Tocci, E. Membrane-Assisted Crystallization: A Molecular View of NaCl Nucleation and Growth. Appl. Sci. 2018, 8, 2145. https://doi.org/10.3390/app8112145

AMA Style

Tsai J-H, Perrotta ML, Gugliuzza A, Macedonio F, Giorno L, Drioli E, Tung K-L, Tocci E. Membrane-Assisted Crystallization: A Molecular View of NaCl Nucleation and Growth. Applied Sciences. 2018; 8(11):2145. https://doi.org/10.3390/app8112145

Chicago/Turabian Style

Tsai, Jheng-Han, Maria Luisa Perrotta, Annarosa Gugliuzza, Francesca Macedonio, Lidietta Giorno, Enrico Drioli, Kuo-Lun Tung, and Elena Tocci. 2018. "Membrane-Assisted Crystallization: A Molecular View of NaCl Nucleation and Growth" Applied Sciences 8, no. 11: 2145. https://doi.org/10.3390/app8112145

APA Style

Tsai, J.-H., Perrotta, M. L., Gugliuzza, A., Macedonio, F., Giorno, L., Drioli, E., Tung, K.-L., & Tocci, E. (2018). Membrane-Assisted Crystallization: A Molecular View of NaCl Nucleation and Growth. Applied Sciences, 8(11), 2145. https://doi.org/10.3390/app8112145

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