基于共轭微孔聚合物的N,N,N ',N ' -四苯基联苯胺吸附罗丹明B的潜力:协同实验和密度泛函理论视角

IF 6.9 Q1 POLYMER SCIENCE
Mohammed G. Kotp, Mohamed Gamal Mohamed*, Pei-Tzu Wang, Ahmed E. Hassan, Ahmed M. Elewa and Shiao-Wei Kuo*, 
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引用次数: 0

摘要

本文介绍了两种新型共轭微孔聚合物(CMP)的合成和构建,TPBZ-PyT CMP和TPBZ-TPET CMP,它们分别含有芘(Py)和四苯乙烯(TPE)亚基。选择这些亚基是因为它们的互补特性,与更刚性的Py结构相比,TPE部分提供了更强的灵活性。假设TPE的柔韧性可以提高cmp对罗丹明B (RhB)染料的吸附性能。使用一系列技术对TPBZ cmp进行了表征,包括布鲁诺尔-埃米特-泰勒(BET)表面积分析、扫描电镜和红外光谱。批量吸附实验表明,TPBZ-TPET CMP在前30 min内对RhB的去除率为49.49%,60 min后达到98.72%,而TPBZ-PyT CMP在60 min时的去除率最高为53.49%。动力学研究揭示了两种TPBZ CMPs的不同吸附机理。采用拟二阶模型分析了TPBZ-TPET CMP的吸附过程,表明化学吸附是主要吸附机理。同时,TPBZ-PyT CMP表现出伪一级动力学,表明其限速步骤不同。这些发现强调了亚基灵活性在设计cmp以增强吸附性能方面的关键作用。TPBZ-TPET CMP的卓越效率强调了柔性工程CMP在推进水净化技术和解决水生环境中染料污染方面的潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Unlocking the Potential of N,N,N′,N′-Tetraphenylbenzidine Based on Conjugated Microporous Polymers for Rhodamine B Adsorption: A Synergistic Experimental and Density Functional Theory Perspective

This study presents the synthesis and construction of two innovative conjugated microporous polymers (CMPs), TPBZ-PyT CMP and TPBZ-TPET CMP, which incorporate pyrene (Py) and tetraphenylethene (TPE) subunits, respectively. These subunits are selected for their complementary properties, with the TPE moiety offering enhanced flexibility compared to the more rigid Py structure. The flexibility of TPE is hypothesized to improve the adsorption performance of the CMPs for removing rhodamine B (RhB) dye from aqueous solutions. The TPBZ CMPs were characterized using a suite of techniques, including Brunauer–Emmett–Teller (BET) surface area analysis, SEM, and FTIR. Batch adsorption experiments demonstrated that TPBZ-TPET CMP achieved a remarkable RhB removal efficiency of 49.49% within the first 30 min, reaching 98.72% after 60 min. In comparison, TPBZ-PyT CMP attained a maximum removal efficiency of 53.49% at the 60 min mark. Kinetic studies revealed distinct adsorption mechanisms for the two TPBZ CMPs. The adsorption process for TPBZ-TPET CMP was analyzed using a pseudo-second-order model, showing that chemisorption is the dominant mechanism. Meanwhile, TPBZ-PyT CMP exhibited pseudo-first-order kinetics, suggesting a different rate-limiting step. These findings highlight the critical role of subunit flexibility in designing CMPs for enhanced adsorption performance. The superior efficiency of TPBZ-TPET CMP underscores the potential of flexibility-engineered CMPs in advancing water purification technologies and addressing dye contamination in aquatic environments.

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CiteScore
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