Md Hasib Al Mahbub, Fouzia Hasan Nowrin, Mohammad Saed, Mahdi Malmali
{"title":"用于增强膜蒸馏的射频触发表面加热激光诱导石墨烯膜","authors":"Md Hasib Al Mahbub, Fouzia Hasan Nowrin, Mohammad Saed, Mahdi Malmali","doi":"10.1039/d4ta05611f","DOIUrl":null,"url":null,"abstract":"Membrane distillation (MD) has attracted significant research interest for desalinating hypersaline brine. However, the lack of robust hydrophobic membrane and lower energy efficiency requirements restrict its true potential. Designing and fabricating a hydrophobic membrane that enables surface heating at the mass transfer interface provides a potential route for efficient desalination with MD. This study aims to study a new class of surface-heated membranes that can be triggered by radiofrequency (RF) electromagnetic waves. We developed hydrophobic membranes that were prepared by CO2 laser ablation of polyethersulfone (PES) membrane substrate. Proposed single-step laser modification converts PES membrane surface to laser-induced graphene (LIG), which is hydrophobic and electroconductive, making it suitable for surface heating. The hydrophobic nature of the prepared PES-LIG membrane is confirmed from surface water contact angle (147.3°), and surface heating potential is studied by investigating the thermal response of the membrane exposed to RF fields. Membrane surface average temperature can reach up to ~140 °C with optimized RF frequency and power. The PES-LIG membrane's mechanical and thermal properties are characterized to investigate its feasibility for MD application. In this work, vacuum MD (VMD) is studied by integrating RF heating and permeate flux up to 13.5 Lm-2h-1 with >99% salt rejection is reported. Cyclic thermal and mechanical stability tests and long-term VMD tests show stable performance of the PES-LIG membranes. This work demonstrates a novel MD technique strategy that can potentially address challenges impeding its commercialization.","PeriodicalId":82,"journal":{"name":"Journal of Materials Chemistry A","volume":"23 1","pages":""},"PeriodicalIF":10.7000,"publicationDate":"2024-11-12","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":"{\"title\":\"Radiofrequency-Triggered Surface-Heated Laser-Induced Graphene Membranes for Enhanced Membrane Distillation\",\"authors\":\"Md Hasib Al Mahbub, Fouzia Hasan Nowrin, Mohammad Saed, Mahdi Malmali\",\"doi\":\"10.1039/d4ta05611f\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"Membrane distillation (MD) has attracted significant research interest for desalinating hypersaline brine. However, the lack of robust hydrophobic membrane and lower energy efficiency requirements restrict its true potential. Designing and fabricating a hydrophobic membrane that enables surface heating at the mass transfer interface provides a potential route for efficient desalination with MD. This study aims to study a new class of surface-heated membranes that can be triggered by radiofrequency (RF) electromagnetic waves. We developed hydrophobic membranes that were prepared by CO2 laser ablation of polyethersulfone (PES) membrane substrate. Proposed single-step laser modification converts PES membrane surface to laser-induced graphene (LIG), which is hydrophobic and electroconductive, making it suitable for surface heating. The hydrophobic nature of the prepared PES-LIG membrane is confirmed from surface water contact angle (147.3°), and surface heating potential is studied by investigating the thermal response of the membrane exposed to RF fields. Membrane surface average temperature can reach up to ~140 °C with optimized RF frequency and power. The PES-LIG membrane's mechanical and thermal properties are characterized to investigate its feasibility for MD application. In this work, vacuum MD (VMD) is studied by integrating RF heating and permeate flux up to 13.5 Lm-2h-1 with >99% salt rejection is reported. Cyclic thermal and mechanical stability tests and long-term VMD tests show stable performance of the PES-LIG membranes. 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Radiofrequency-Triggered Surface-Heated Laser-Induced Graphene Membranes for Enhanced Membrane Distillation
Membrane distillation (MD) has attracted significant research interest for desalinating hypersaline brine. However, the lack of robust hydrophobic membrane and lower energy efficiency requirements restrict its true potential. Designing and fabricating a hydrophobic membrane that enables surface heating at the mass transfer interface provides a potential route for efficient desalination with MD. This study aims to study a new class of surface-heated membranes that can be triggered by radiofrequency (RF) electromagnetic waves. We developed hydrophobic membranes that were prepared by CO2 laser ablation of polyethersulfone (PES) membrane substrate. Proposed single-step laser modification converts PES membrane surface to laser-induced graphene (LIG), which is hydrophobic and electroconductive, making it suitable for surface heating. The hydrophobic nature of the prepared PES-LIG membrane is confirmed from surface water contact angle (147.3°), and surface heating potential is studied by investigating the thermal response of the membrane exposed to RF fields. Membrane surface average temperature can reach up to ~140 °C with optimized RF frequency and power. The PES-LIG membrane's mechanical and thermal properties are characterized to investigate its feasibility for MD application. In this work, vacuum MD (VMD) is studied by integrating RF heating and permeate flux up to 13.5 Lm-2h-1 with >99% salt rejection is reported. Cyclic thermal and mechanical stability tests and long-term VMD tests show stable performance of the PES-LIG membranes. This work demonstrates a novel MD technique strategy that can potentially address challenges impeding its commercialization.
期刊介绍:
The Journal of Materials Chemistry A, B & C covers a wide range of high-quality studies in the field of materials chemistry, with each section focusing on specific applications of the materials studied. Journal of Materials Chemistry A emphasizes applications in energy and sustainability, including topics such as artificial photosynthesis, batteries, and fuel cells. Journal of Materials Chemistry B focuses on applications in biology and medicine, while Journal of Materials Chemistry C covers applications in optical, magnetic, and electronic devices. Example topic areas within the scope of Journal of Materials Chemistry A include catalysis, green/sustainable materials, sensors, and water treatment, among others.