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Updated: Jan 11, 2026

Organic Structure-directing Agent-free Synthesis for *BEA-type Zeolite Membrane
Published on: February 22, 2020
Synergy of Tetraalkylammonium and Polyquaternium Enables Zeolite Membranes with Exceptional Gas Separation
Hong Xiao1, Yuhan Yan1, Zhaogen Zhang1
1State Key Laboratory of Materials-Oriented Chemical Engineering, College of Chemical Engineering, Nanjing Tech University, Nanjing, 210009, P. R. China.
Abstract:
Crystalline microporous membranes and films hold great promise for separation and catalysis; but their molecular sieving performance is compromised by boundary defects generated during conventional hydrothermal/solvothermal synthesis. Herein, a dual-ammonium synthesis (DAS) strategy is presented to fabricate high-silica zeolite membranes, where novel polyquaterniums promote the nucleation within interparticle gaps, while a classic tetraalkylammonium facilitates zeolite crystallization. The synergistic interplay between the two ammoniums balances in-plane and out-of-plane growth of the zeolite layer, yielding thin yet defect-scarce zeolite membranes. The generality of the DAS approach is demonstrated by fabricating a couple of high-quality SSZ-13 membranes through the combination of the tetraalkylammonium with various polyquaterniums, introduced either in the gel or seed suspension. Compared to conventional single-ammonium synthesis, the DAS strategy produces thinner and higher-performance zeolite membranes in half the synthesis time. The optimized membrane achieves a CO2 permeance of 1780 × 10-9 mol m-2 s-1 Pa-1 and a CO2/CH4 selectivity of 460 for an equimolar CO2/CH4 mixture, surpassing most reported membranes. This work establishes the DAS strategy as an efficient and reproducible route to produce high-performance zeolite membranes with broad applicability.
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