Plasmonic Phenomena in Membrane Distillation

Author:

Alessandro Francesca1ORCID,Macedonio Francesca1ORCID,Drioli Enrico1ORCID

Affiliation:

1. Institute on Membrane Technology, National Research Council of Italy (CNR-ITM), Via P. Bucci 17/C, 87036 Rende, Italy

Abstract

Water scarcity raises important concerns with respect to human sustainability and the preservation of important ecosystem functions. To satisfy water requirements, seawater desalination represents one of the most sustainable solutions. In recent decades, membrane distillation has emerged as a promising thermal desalination process that may help to overcome the drawbacks of traditional desalination processes. Nevertheless, in membrane distillation, the temperature at the feed membrane interface is significantly lower than that of the bulk feed water, due to the latent heat flux associated with water evaporation. This phenomenon, known as temperature polarization, in membrane distillation is a crucial issue that could be responsible for a decay of about 50% in the initial transmembrane water flux. The use of plasmonic nanostructures, acting as thermal hotspots in the conventional membranes, may improve the performance of membrane distillation units by reducing or eliminating the temperature polarization problem. Furthermore, an efficient conversion of light into heat offers new opportunities for the use of solar energy in membrane distillation. This work summarizes recent developments in the field of plasmonic-enhanced solar evaporation with a particular focus on solar-driven membrane distillation applications and its potential prospects.

Publisher

MDPI AG

Subject

Filtration and Separation,Chemical Engineering (miscellaneous),Process Chemistry and Technology

Reference98 articles.

1. Water on an urban planet: Urbanization and the reach of urban water infrastructure;McDonald;Glob. Environ. Chang.,2014

2. Rural water for thirsty cities: A systematic review of water reallocation from rural to urban regions;Garrick;Environ. Res. Lett.,2019

3. Water competition between cities and agriculture driven by climate change and urban growth;Schneider;Nat. Sustain.,2018

4. (2015). Progress on Sanitation and Drinking Water: 2015 Update and MDG Assessment, World Health Organization.

5. Economically challenged and water scarce: Identification of global populations most vulnerable to water crises;Oki;Int. J. Water Resour. Dev.,2020

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