Deng Min, Wei Jing, Guo Jundong, Qin Zikang, Song Jia, Zheng Junfeng, Yang Lin, Yao Lu, Jiang Wenju, Ma Xiaohua, He Xuezhong, He Jiadai, Wang Jianjian, Dai Zhongde
College of Architecture and Environment, Sichuan University, Chengdu, 610065, P. R. China.
National Engineering Research Centre for Flue Gas Desulfurization, Chengdu, 610065, P. R. China.
Adv Sci (Weinh). 2025 Aug;12(32):e03471. doi: 10.1002/advs.202503471. Epub 2025 Jun 5.
The rational design of precursor structure serves as a critical determinant for the pore geometry and gas separation performance of carbon molecular sieve (CMS) membranes. Herein, a novel mixed-matrix CMS (MMCMS) membrane was fabricated via a palladium-doped carboxyl-functionalized UiO-66 (Pd/UiO66-COOH)/polyimide (PI) MMM precursor. On one hand, the decomposition of -COOH groups generates abundant micropores, meanwhile the decarboxylation-induced thermally cross-linking enhances the stability of the carbon framework, thus mitigating the collapse of micropores during carbonization and consequently improving H and CO permeability, as well as membrane stability; on the other hand, the synergistic effect of decarboxylation-induced thermally cross-linking and the catalytic graphitization effects of Pd nanoparticles facilitated the formation of more ordered Langmuir domains and narrowed carbon interlayer spacing, thereby enhancing molecular sieving effects. In addition, Pd nanoparticles also contribute to providing abundant H adsorption sites to facilitated transport of H gases. Specifically, the PI/Pd-UiO66-COOH-5-550 MMCMS membrane exhibited superior H permeability of 9134.6 Barrer (P = 4033.4 Barrer) with H/CH selectivity of 118.5 (α = 52.3), exceeding the latest Robeson upper bound. Furthermore, the membrane also demonstrated attractive aging resistance, retaining over 90% of its initial H and CO permeability after a 21-day long-term stability test.
前驱体结构的合理设计是决定碳分子筛(CMS)膜的孔几何结构和气体分离性能的关键因素。在此,通过钯掺杂的羧基功能化UiO-66(Pd/UiO66-COOH)/聚酰亚胺(PI)混合基质前驱体制备了一种新型的混合基质CMS(MMCMS)膜。一方面,-COOH基团的分解产生大量微孔,同时脱羧诱导的热交联增强了碳骨架的稳定性,从而减轻了碳化过程中微孔的坍塌,进而提高了H和CO的渗透率以及膜的稳定性;另一方面,脱羧诱导的热交联与钯纳米颗粒的催化石墨化作用的协同效应促进了更有序的朗缪尔域的形成并缩小了碳层间距,从而增强了分子筛效应。此外,钯纳米颗粒还有助于提供丰富的H吸附位点以促进H气体的传输。具体而言,PI/Pd-UiO66-COOH-5-550 MMCMS膜表现出优异的H渗透率,为9134.6 Barrer(P = 4033.4 Barrer),H/CH选择性为118.5(α = 52.3),超过了最新的罗伯逊上限。此外,该膜还表现出出色的抗老化性能,在经过21天的长期稳定性测试后,仍保留了其初始H和CO渗透率的90%以上。