Lee Chang-Ju, Shee Nirmal Kumar, Kim Hee-Joon
Department of Chemistry and Bioscience, Kumoh National Institute of Technology Gumi 39177 Republic of Korea
RSC Adv. 2023 Aug 11;13(34):24077-24085. doi: 10.1039/d3ra04117d. eCollection 2023 Aug 4.
A robust porous organic polymer cross-linked by Sn(iv) porphyrin (SnPOP) was fabricated by reacting -dihydroxo-[5,15,10,20-tetrakis(phenyl)porphyrinato]tin(iv) (SnP) with fluorinated polyimide (FPI) sol-gel formation, followed by supercritical CO drying. The structural and porous properties of SnPOP were characterized using FT-IR, UV-vis, and fluorescence spectroscopies, along with field-emission scanning electron microscopy and gas sorption experiments. The reaction between the SnP's oxophilic Sn(iv) center and FPI's carboxylic acid moiety resulted in a controllable cross-linked porous texture. This material features the desirable physical properties of porphyrin and exhibits mesoporous structures with a relatively high surface area. SnPOP is thermally stable at temperatures up to 600 °C and highly resistant to boiling water, strong acids, and bases, owing to its assembly formation of covalent bonds instead of typically weaker hydrogen bonds. The modified chemical and morphological structures of SnPOP showed an impressive CO uptake capacity of 58.48 mg g at 273 K, with a preference for CO over N. SnPOP showed significant efficiency in removing pollutant dyes, such as methylene blue and methyl orange, from dye-contaminated water. Additionally, SnPOP was a photocatalyst for fabricating silver nanoparticles of regular shape and size. All these properties make SnPOP a potential candidate for environmental applications like pollutant removal, gas storage, and separation.
通过使二羟基-5,15,10,20-四(苯基)卟啉合锡(IV)与氟化聚酰亚胺(FPI)进行溶胶-凝胶形成反应,随后进行超临界CO2干燥,制备了一种由锡(IV)卟啉交联的坚固多孔有机聚合物(SnPOP)。使用傅里叶变换红外光谱(FT-IR)、紫外-可见光谱和荧光光谱,以及场发射扫描电子显微镜和气体吸附实验对SnPOP的结构和多孔性质进行了表征。SnP的亲氧性Sn(IV)中心与FPI的羧酸部分之间的反应导致了可控的交联多孔结构。这种材料具有卟啉所需的物理性质,并呈现出具有相对较高表面积的介孔结构。由于其通过共价键组装形成,而非通常较弱的氢键,SnPOP在高达600°C的温度下具有热稳定性,并且对沸水、强酸和强碱具有高度抗性。SnPOP改性后的化学和形态结构在273K下显示出令人印象深刻的58.48mg g-1的CO吸附容量,对CO的选择性高于N2。SnPOP在从受染料污染的水中去除污染物染料,如亚甲基蓝和甲基橙方面表现出显著效率。此外,SnPOP是制备形状和尺寸规则的银纳米颗粒的光催化剂。所有这些性质使SnPOP成为污染物去除、气体存储和分离等环境应用的潜在候选材料。