Vapor/Vapor‐Solid Interfacial Growth of Covalent Organic Framework Membranes on Alumina Hollow Fiber for Advanced Molecular Separation

Author:

Siow Wei Jian Samuel123,Chong Jeng Yi2ORCID,Ong Jia Hui134ORCID,Kraft Markus156ORCID,Wang Rong27,Xu Rong15ORCID

Affiliation:

1. School of Chemistry Chemical Engineering and Biotechnology Nanyang Technological University 62 Nanyang Drive Singapore 637459 Singapore

2. Singapore Membrane Technology Centre Nanyang Environment and Water Research Institute Nanyang Technological University 1 Cleantech Loop Singapore 637141 Singapore

3. Nanyang Environment and Water Research Institute Interdisciplinary Graduate Programme Nanyang Technological University 61 Nanyang Drive Singapore 637335 Singapore

4. Environmental Chemistry and Materials Centre Nanyang Environment and Water Research Institute Nanyang Technological University 1 Cleantech Loop Singapore 637141 Singapore

5. Cambridge Centre for Carbon Reduction in Chemical Technologies Campus for Research Excellence and Technological Enterprise National Research Foundation, CREATE Tower 1 Create Way Singapore 138602 Singapore

6. Department of Chemical Engineering and Biotechnology University of Cambridge, West Cambridge, Philippa Fawcett Drive Cambridge CB3 0AS United Kingdom

7. School of Civil and Environmental Engineering Nanyang Technological University 50 Nanyang Avenue Singapore 639798 Singapore

Abstract

AbstractCovalent organic frameworks (COFs), known for their chemical stability and porous crystalline structure, hold promises as advanced separation membranes. However, fabricating high‐quality COF membranes, particularly on industrial‐preferred hollow fiber substrates, remains challenging. This study introduces a novel vapor/vapor‐solid (V/V−S) method for growing ultrathin crystalline TpPa‐1 COF membranes on the inner lumen surface of alumina hollow fibers (TpPa‐1/Alumina). Through vapor‐phase monomer introduction onto polydopamine‐modified alumina at 170 °C and 1 atm, efficient polymerization and crystallization occur at the confined V−S interface. This enables one‐step growth within 8 h, producing 100 nm thick COF membranes with strong substrate adhesion. TpPa‐1/Alumina exhibits exceptional stability and performance over 80 h in continuous cross‐flow organic solvent nanofiltration (OSN), with methanol permeance of about 200 L m−2 h−1 bar−1 and dye rejection with molecular weight cutoff (MWCO) of approximately 700 Da. Moreover, the versatile V/V−S method synthesizes two additional COF membranes (TpPa2Cl/Alumina and TpHz/Alumina) with different pore sizes and chemical environments. Adjusting the COF membrane thickness between 100–500 nm is achievable easily by varying the growth cycle numbers. Notably, TpPa2Cl/Alumina demonstrates excellent OSN performance in separating the model active pharmaceutical ingredient glycyrrhizic acid (GA) from dimethyl sulfoxide (DMSO), highlighting the method's potential for large‐scale industrial applications.

Funder

National Research Foundation Singapore

Public Utilities Board - Singapore

Publisher

Wiley

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