Shao Wei, Zhong Xiao-Feng, Chen Yi-Le, Chen Zhen, Jia Miao-Miao, Yang Wen-Yong, Yu Jing-Ran, Zhang Pan-Pan, Li Yi, Xue Ming
School of Chemical Engineering and Technology, Sun Yat-sen University, Guangzhou 510275, P. R. China.
Chem Bio Eng. 2025 Mar 28;2(5):332-340. doi: 10.1021/cbe.5c00006. eCollection 2025 May 22.
Highly efficient and energy-conserving membrane separation technology holds vast potential for applications in the bioethanol production process. This work reports a strategy for the fast preparation of an oriented and flexible two-dimensional metal-organic framework (MOF) nanosheet membrane by an electrochemical deposition method. The oriented MOF nanosheet membrane growth, followed by spin-coating of polydimethylsiloxane, resulted in an efficiently formed superhydrophobic and ethanol affinity membrane for separating ethanol from aqueous solution. Vertically aligned MOF nanosheets with strong ethanol affinity and superhydrophobic membrane surfaces simultaneously promote the transport process, thus delivering a relatively high flux of 1.63 kg·m·h and good separation factor of 14.89 in the pervaporation of 5 wt % ethanol aqueous solution. The oriented arrangement of MOF nanosheets combined with polydimethylsiloxane can significantly enhance the pervaporation selectivity and flux, creating a preferential pathway for the production of biofuel.
高效节能的膜分离技术在生物乙醇生产过程中具有巨大的应用潜力。本工作报道了一种通过电化学沉积法快速制备取向且柔性的二维金属有机框架(MOF)纳米片膜的策略。取向的MOF纳米片膜生长,随后旋涂聚二甲基硅氧烷,形成了一种用于从水溶液中分离乙醇的高效超疏水且具有乙醇亲和性的膜。具有强乙醇亲和性的垂直排列的MOF纳米片和超疏水膜表面同时促进了传输过程,从而在5 wt%乙醇水溶液的渗透汽化中实现了相对较高的通量1.63 kg·m⁻²·h⁻¹和良好的分离因子14.89。MOF纳米片与聚二甲基硅氧烷的取向排列可显著提高渗透汽化的选择性和通量,为生物燃料的生产创造了优先通道。