1-Adamantanamine implementation in surface engineering of biomimetic PVDF-based membranes for enhanced membrane distillation

被引:1
作者
Al-Gharabli, Samer [1 ,2 ]
Al-Rifai, Nafisah [1 ]
Jureviciute, Simona [3 ]
Kareiva, Aivaras [3 ]
Terzyk, Artur P. [4 ]
Korczeniewski, Emil [4 ]
Olewnik-Kruszkowska, Ewa [5 ]
Flanc, Zuzanna [5 ]
Jankowski, Waldemar [5 ]
Kujawski, Wojciech [5 ]
Kujawa, Joanna [5 ]
机构
[1] German Jordanian Univ, Pharmaceut & Chem Engn Dept, Amman 11180, Jordan
[2] Abdullah Al Salem Univ AASU, Coll Integrat Studies, Block 3, Khaldiya, Kuwait
[3] Vilnius Univ, Inst Chem, 24 Naugarduko St, LT-03225 Vilnius, Lithuania
[4] Nicolaus Copernicus Univ Torun, Fac Chem, Physicochem Carbon Mat Res Grp, Gagarin St 7, PL-87100 Torun, Poland
[5] Nicolaus Copernicus Univ Torun, Fac Chem, 7 Gagarina St, Torun, Poland
关键词
1-Adamantanamine; PVDF; Membrane distillation; Surface engineering; Sustainability; BIOCONCENTRATION FACTOR; BIOACCUMULATION FACTOR; ANTIVIRAL ACTIVITY; WASTE-WATER; SEPARATION; DESALINATION; REMOVAL; PERFORMANCE; CHEMICALS; ETHANOL;
D O I
10.1016/j.desal.2024.118331
中图分类号
TQ [化学工业];
学科分类号
0817 ;
摘要
Membrane distillation (MD) stands at the forefront of desalination technology, harnessing the power of phase change to separate water vapor from saline using minimal energy resources efficiently. In response to this challenge, membranes with tuned pores morphology and surface chemistry with biomimetic 3D pine-like structures with improved affinity to water (desalination) and/or hazardous VOC (VOC removal) were developed and studied systematically. By implementing VIPS-PVDF membranes and a green modifier of 1-adamantanamine for the first time, membranes with a revolutionary network architecture were generated. The modifier was introduced either physically to the polymeric matrix or chemically through covalent attachment onto the surface and inside the porous structure. As a result, membranes that defy wetting under extreme hydrostatic pressures (>11.5 bar) were produced while preserving unparalleled vapor transport efficiency. The 1-adamantanamine promotes transport and enhances the affinity to the VOC, ensuring excellent membrane performance at different applications of the MD process. Transport was enhanced >3.6 times and separation factor beta changed from 3.48 to 15.22 for MTBE removal and from 2.0 to 3.46 for EtOH removal when comparing pristine PVDF with membrane chemically modified with 1-adamantanamine (PVDF_Ch02). The process separation index during the MTBE removal changed from 20 kg m(-2) h(-1) (PVDF) to 297 kg m(-2) h(-1) (PVDF_Ch02). All materials were highly stable and durable during the MD applications. This innovative approach not only revolutionizes desalination but also holds immense promise for diverse applications beyond, particularly in the realm of wastewater treatment. A study of the icing process on a cold plate with new membranes provided deeper insight into the icing mechanism and the role of membrane LEP in it.
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页数:22
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共 117 条
  • [1] Electrospun bio-polymeric nanofibrous membrane for membrane distillation desalination application
    Aijaz, Muhammad Omer
    Othman, Mohd Hafiz Dzarfan
    Karim, Mohammad Rezaul
    Khan, Asmat Ullah
    Najib, Abdullah
    Assaifan, Abdulaziz K.
    Alharbi, Hamad F.
    Alnaser, Ibrahim Abdullah
    Puteh, Mohd Hafiz
    [J]. DESALINATION, 2024, 586
  • [2] Low-Fouling Polyvinylidene Fluoride Microfiltration Membranes Produced by Grafting Carboxybetaine Polymers by Atom Transfer Radical Polymerization and Activator Generated by Electron Transfer-Atom Transfer Radical Polymerization
    Akamatsu, Kazuki
    Shida, Taisei
    Ochiai, Ayaka
    Fukase, Ryo
    Ohashi, Hidenori
    Nakao, Shin-ichi
    Wang, Xiao-lin
    [J]. INDUSTRIAL & ENGINEERING CHEMISTRY RESEARCH, 2022, 61 (39) : 14649 - 14655
  • [3] Porcupine quills-like-structures containing smart PVDF/chitosan hybrids for anti-fouling membrane applications and removal of hazardous VOCs
    Al-Gharabli, Samer
    Flanc, Zuzanna
    Pianka, Katarzyna
    Terzyk, Artur P.
    Kujawski, Wojciech
    Kujawa, Joanna
    [J]. CHEMICAL ENGINEERING JOURNAL, 2023, 452
  • [4] Biomimetic hybrid membranes with covalently anchored chitosan - Material design, transport and separation
    Al-Gharabli, Samer
    Al-Omari, Bana
    Kujawski, Wojciech
    Kujawa, Joanna
    [J]. DESALINATION, 2020, 491
  • [5] Tunable separation via chemical functionalization of polyvinylidenefluoride membranes using piranha reagent
    Al-Gharabli, Samer
    Kujawski, Wojciech
    Arafat, Hassan A.
    Kujawa, Joanna
    [J]. JOURNAL OF MEMBRANE SCIENCE, 2017, 541 : 567 - 579
  • [6] Enantioselective catalytic Strecker reaction on cyclic (Z)-aldimines in flow: reaction optimization and sustainability aspects
    Alfano, Antonella Ilenia
    Sorato, Andrea
    Ciogli, Alessia
    Lange, Heiko
    Brindisi, Margherita
    [J]. JOURNAL OF FLOW CHEMISTRY, 2024, 14 (01) : 197 - 210
  • [7] Modeling-based investigation on the contribution of radial heating into integrated VMD hollow-fiber modules at different scales for autonomous desalination
    Alfonso, Gina
    Laborie, Stephanie
    Cabassud, Corinne
    [J]. DESALINATION, 2024, 569
  • [8] Activated carbon as a photothermal absorber in PVDF membranes for solar driven air-gap membrane distillation
    Alqaydi, Maryam
    Mavukkandy, Musthafa O.
    Mustafa, Ibrahim
    Alnuaimi, Aaesha
    Arafat, Hassan A.
    Almarzooqi, Faisal
    [J]. DESALINATION, 2022, 541
  • [9] Enhanced vapor transport in membrane distillation via functionalized carbon nanotubes anchored into electrospun nanofibres
    An, Alicia Kyoungjin
    Lee, Eui-Jong
    Guo, Jiaxin
    Jeong, Sanghyun
    Lee, Jung-Gil
    Ghaffour, Noreddine
    [J]. SCIENTIFIC REPORTS, 2017, 7
  • [10] Kinetics of mass transfer during vapour-induced phase separation (VIPS) process and its influence on poly-(vinylidene fluoride) (PVDF) membrane structure and surface morphology
    Annamalai, Pratheep Kumar
    Pochat-Bohatier, Celine
    Bouyer, Denis
    Li, Chia-Ling
    Deratani, Andre
    Wang, Da-Ming
    [J]. DESALINATION AND WATER TREATMENT, 2011, 34 (1-3) : 204 - 210