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Synergistic Physisorption–Chemisorption Mechanism Enables High-Capacity NO2 Capture in Nitrogen-Rich Conjugated Microporous Polymers

材料科学 共轭微孔聚合物 吸附 微型多孔材料 化学工程 热稳定性 聚合物 分子 滴定法 热分解 化学稳定性 硝化棉 放气 共轭体系 稳定器(航空) 介孔材料 纳米技术 树枝状大分子 化学反应 多孔性 分解 高分子化学 蒸汽 光热治疗 耐化学性
作者
Wenjiang Li,Zhiyi Wu,Dong Xiang,Yingtao Xu,Huimin Chen,Aoao Lu,Qiang Li,Chenguang Li,Fengqiang Nan,Ping Du,Hongfei Ma,Binbin Wang
出处
期刊:ACS Applied Materials & Interfaces [American Chemical Society]
卷期号:17 (39): 54701-54710 被引量:1
标识
DOI:10.1021/acsami.5c10104
摘要

The limited number of active sites of small-molecule stabilizers makes it difficult to inhibit the autocatalytic reaction of nitrocellulose (NC) in complex environments. The high thermal stability and sufficient active sites of conjugated microporous polymers (CMPs) provide a new solution for NC stabilizers under harsh conditions. In this work, N-rich CMPs networks were presented for NC stabilizers, namely, 3D polyamine (PTPA) networks synthesized via Buchwald-Hartwig (BH) coupling between tris(4-aminophenyl)amine (TAPA) and aryl bromine. Among them, PTPA-2 exhibited a rich microporous structure with a high specific surface area of up to 700 m 2 ·g –1 and showed excellent thermal stability. With 3% PTPA-2, the NC reduced outgassing by 58% in the vacuum stability test (VST) and prolonged the time to color change of the methyl violet paper by two times. In addition, PTPA-2 adsorbed NO x gas up to 8.05 × 10 –2 mmol/g. Furthermore, it effectively restrained the release of NO x gas from NC by 60% in the NO x titration test. The TG-DSC-FTIR-GC-MS method was employed to analyze the generation of NO 2 from the thermal decomposition of NC, confirming that PTPA-2 absorbed NO 2 to stabilize NC in several ways. The possibilities of the adsorption effect and chemical bonding at different positions in PTPA-2 were simulated by density functional theory (DFT). Furthermore, it was revealed that the −N–Ar-NH– active site absorbed NO 2 molecules in a coordinated process, including physical adsorption and chemical immobilization. The results disclosed in this work are supposed to propose and design stabilizers with high NO x adsorption capacity and high stability. Additionally, the porous materials used in this work can also provide some inspiration on exhaust gases adsorption.
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