Novel design of hydrophobic membrane could improve the efficiency of membrane distillation (MD) technology. Owning to being easy to realize hydrophobic modification, fast radial heat transfer rate and limiting the passage of larger contaminants, hydrophobic graphene oxide (GO) membrane shows potential for MD process. In this work, we reported on a new type of nanoparticles intercalated GO membrane with hydrophobic surface for MD application fabricated by vacuum-filtration method. The introduction of nanoparticles (SiO2) by physical mixing enhanced the surface roughness of GO membrane. A subsequent grafting of long alkyl chains (hexadecyl-trimethoxysilane) further increased the membrane hydrophobicity. The effects of treating temperature and nanoparticles content on the membrane nanostructures, surface hydrophobicity and desalination performance were systematically investigated. The optimized membrane annealed at 80 ?C with hydrophobic surface (water contact angle: 120.8?) exhibited water flux of 13.59 kg m-2 h-1 and salt rejection of 99.99% under 60 ?C for 35 g L-1 NaCl in water during vacuum MD process. Besides of the expected gradually higher water flux at elevated temperature, such excellent desalination performance remains stable by varying the salt concentration or adding model foulants such as surfactant sodium dodecyl sulfate and organic humid acid in the feed.

Roughness-enhanced hydrophobic graphene oxide membrane for water desalination via membrane distillation

A Gugliuzza
Writing – Review & Editing
;
E Drioli;
2020

Abstract

Novel design of hydrophobic membrane could improve the efficiency of membrane distillation (MD) technology. Owning to being easy to realize hydrophobic modification, fast radial heat transfer rate and limiting the passage of larger contaminants, hydrophobic graphene oxide (GO) membrane shows potential for MD process. In this work, we reported on a new type of nanoparticles intercalated GO membrane with hydrophobic surface for MD application fabricated by vacuum-filtration method. The introduction of nanoparticles (SiO2) by physical mixing enhanced the surface roughness of GO membrane. A subsequent grafting of long alkyl chains (hexadecyl-trimethoxysilane) further increased the membrane hydrophobicity. The effects of treating temperature and nanoparticles content on the membrane nanostructures, surface hydrophobicity and desalination performance were systematically investigated. The optimized membrane annealed at 80 ?C with hydrophobic surface (water contact angle: 120.8?) exhibited water flux of 13.59 kg m-2 h-1 and salt rejection of 99.99% under 60 ?C for 35 g L-1 NaCl in water during vacuum MD process. Besides of the expected gradually higher water flux at elevated temperature, such excellent desalination performance remains stable by varying the salt concentration or adding model foulants such as surfactant sodium dodecyl sulfate and organic humid acid in the feed.
2020
Istituto per la Tecnologia delle Membrane - ITM
Inglese
611
118364
1
10
10
http://www.scopus.com/inward/record.url?eid=2-s2.0-85086596766&partnerID=q2rCbXpz
Esperti anonimi
Nanoparticles
Graphene oxide membrane
Desalination
Membrane distillation
Internazionale
Elettronico
8
info:eu-repo/semantics/article
262
Mao, Y; Huang, Q; Meng, B; Zhou, K; Liu, G; Gugliuzza, A; Drioli, E; Jin, W
01 Contributo su Rivista::01.01 Articolo in rivista
restricted
   Nuove membrane nanostrutturate preparate da materiali 2D per lo sviluppo di processi produttivi di nuova concezione dedicati alla fornitura di acqua fresca e alla purificazione di gas
   2DMEMPUR
   The Italian Ministry of Foreign Affairs and International Cooperation
   MAECI

   Great Relevance International Project: New Materials, with particular reference to Two-dimensional systems and Graphene
   National Natural Science Foundation of China
   NSFC
   51861135203, 91934303, 21922805, 21776125

   Innovative Research Team Program
   the Ministry of Education of China
   IRT_17R54
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/20.500.14243/404338
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