MXenes公司
膜
材料科学
薄膜复合膜
海水淡化
复合数
化学工程
纳米技术
化学
复合材料
工程类
反渗透
生物化学
作者
M. Obaid,Jehad K. El‐Demellawi,Jaewon Lee,Muhammad Saqib Nawaz,Mrinal K. Hota,Valentina Musteaţa,Harun Elcik,Mohamed Nejib Hedhili,Sofiane Soukane,Xiangming Xu,Seungkwan Hong,Husam N. Alshareef,Noreddine Ghaffour
出处
期刊:InfoMat
[Wiley]
日期:2025-08-12
卷期号:7 (10)
摘要
Abstract Thin‐film composite (TFC) membranes featuring nanovoid‐containing polyamide (PA) layers on supportive nanofiber substrates represent a significant advancement in desalination technology. However, the separation performance of TFC membranes hinges critically on the nanoscale thickness of the PA layers and their distinctive ridge‐and‐valley roughness. This complex morphology is a direct result of interfacial instability arising during the highly exothermic interfacial polymerization (IP), where heat generation drives non‐uniform PA layer growth. To mitigate these instabilities that adversely affect the overall membrane performance, thermally conductive MXene (Ti 3 C 2 T x ) nanosheets are spray‐coated onto the supportive polymeric substrates before initiating the IP process. The MXene‐coated substrate significantly improves the surface morphology of the PA layer, reducing its thickness to 18 nm and minimizing nanovoid formation due to the effective lateral heat dissipation by the Ti 3 C 2 T x MXene interlayer. These interlayers regulate monomer diffusion via hydrogen bonding and covalent interactions, ensuring uniform polymerization and defect‐free PA layers. The optimized Ti 3 C 2 T x MXene‐interlayered TFC membrane exhibits a more than two‐fold increase in the water flux, exceeding that of commercial membranes, while significantly improving ion rejection. This study highlights the significant impact of substrate thermal conductivity on desalination efficiency, enabling the development of smooth and efficient PA nanofilms for high‐performance desalination through the tailored design of interlayered TFC membranes. image
科研通智能强力驱动
Strongly Powered by AbleSci AI