晏贺伟,孟澳,秦元成. 腙键与吡啶协同增强共价有机聚合物的钯吸附性能(特邀)[J]. 南昌航空大学学报(自然科学版),2026,40(2):21-30. doi: 10.3969/j.issn.2096-8566.2026.02.003
引用本文: 晏贺伟,孟澳,秦元成. 腙键与吡啶协同增强共价有机聚合物的钯吸附性能(特邀)[J]. 南昌航空大学学报(自然科学版),2026,40(2):21-30. doi: 10.3969/j.issn.2096-8566.2026.02.003
YAN Hewei,MENG Ao,QIN Yuancheng. Synergistic enhancement of palladium adsorption on covalent organic polymers via hydrazone linkages and pyridine (invited)[J]. Journal of Nanchang Hangkong University (Natural Sciences),2026,40(2):21-30. doi: 10.3969/j.issn.2096-8566.2026.02.003
Citation: YAN Hewei,MENG Ao,QIN Yuancheng. Synergistic enhancement of palladium adsorption on covalent organic polymers via hydrazone linkages and pyridine (invited)[J]. Journal of Nanchang Hangkong University (Natural Sciences),2026,40(2):21-30. doi: 10.3969/j.issn.2096-8566.2026.02.003

腙键与吡啶协同增强共价有机聚合物的钯吸附性能(特邀)

Synergistic Enhancement of Palladium Adsorption on Covalent Organic Polymers via Hydrazone Linkages and Pyridine (Invited)

  • 摘要: 针对强酸性含钯废液中传统吸附剂稳定性差、选择性低的瓶颈,本研究提出一种“稳定骨架−功能位点”协同设计策略,以高稳定性的腙键作为骨架连接单元,同时引入具有强配位能力的吡啶与三嗪基团,从而实现了材料结构稳定性与吸附活性的统一。基于这一策略,本文制备了2种新型腙键连接的共价有机聚合物TFPT-BPY与TFPT-BPH,并通过红外、XRD、氮气吸附−脱附等技术手段系统表征材料的理化性质。吸附性能研究表明,2种材料在宽pH范围(1~5)内对Pd(II)均保持高效去除率( > 94%),TFPT-BPY的最大吸附容量(205.08 mg·g−1)较TFPT-BPH(155.74 mg·g−1)提升31.7%。X射线光电子能谱分析表明,Pd(II)主要通过与原位三嗪及吡啶环中的氮原子配位而被捕获,TFPT-BPY结构中额外的吡啶氮为其提升钯吸附能力提供了更多位点。2种材料均具备较好的稳定性,在5次吸附−脱附循环后仍能保持70%以上的吸附效率。本研究为构建高稳定性、高容量与优异选择性的新型吸附剂材料提供了新方法。

     

    Abstract: To address the bottlenecks of poor stability and low selectivity of traditional adsorbents when dealing with strongly acidic palladium-containing wastewater, this study proposed a synergistic “stable skeleton–functional site” design strategy. Highly stable hydrazone linkages were used as the backbone connection moieties, while pyridine and triazine groups with strong coordination capability were incorporated, which realized the unification of structural stability and adsorption activity. Based on this strategy, two novel hydrazone-linked covalent organic polymers, TFPT-BPY and TFPT-BPH, were successfully prepared, and their physicochemical properties were systematically characterized by techniques including FTIR, XRD, and nitrogen adsorption–desorption measurements. Adsorption performance studies showed that both materials maintained high Pd(II) removal efficiency (>94%) over a wide pH range of 1~5, and the maximum adsorption capacity of TFPT-BPY (205.08 mg·g1) was 31.7%, which was higher than that of TFPT-BPH (155.74 mg·g1). X-ray photoelectron spectroscopy (XPS) analysis indicated that Pd(II) was primarily captured through coordination with nitrogen atoms in the triazine and pyridine rings. The additional pyridine nitrogen within TFPT-BPY structure provided many more binding sites, thereby enhancing its palladium adsorption capacity. Both materials exhibited exceptional stability, retaining over 70% adsorption efficiency after five adsorption–desorption cycles. This study provides a new approach for developing novel adsorbent materials with high stability, high adsorption capacity, and excellent selectivity.

     

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