Preparation of sp2c-COF functionalized silica gel material as chromatographic stationary phases for their high-resolution separation of geometric isomers

IF 4.9 2区 化学 Q1 CHEMISTRY, ANALYTICAL Microchemical Journal Pub Date : 2024-09-07 DOI:10.1016/j.microc.2024.111569
Lan Ma, Yuanyuan Li, Le Shang, Yulong Ma, Yonggang Sun, Wenxin Ji
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Abstract

Exploration and development of novel chromatographic stationary phases is an effective way to improve the separation efficiency of geometric isomers with similar physicochemical properties. Covalent organic frameworks (COFs) are a new class of porous organic polymers that show a wide range of applications in the field of separation science due to their tunable geometries and functionalities, infinitely extended network structures, and abundant interaction sites. However, the common imine-bonded COFs are poorly resistant to hydrolysis in HPLC. In this work, 2,4,6-trimethyl-1,3,5-triazine (TMT) and 1,3,5-tris (4-formylphenyl) triazine (TFPT) were used as raw materials, a sp carbon-conjugated covalent organic framework (spc-COF) was synthesized through self-assembly monolayer-assisted surface-initiated Schiff-base-mediated hydroxyl-aldehyde condensation reaction, and loaded on the surface of silica substrate with a CN bond to obtain a new segregated material (SiO@spc-COF). SiO@spc-COF was used as a high-performance liquid chromatography (HPLC) packing material for the separation of geometric isomers. Benefitting from its superb in-plane π-conjugation, highly ordered and robust framework structure, high chemical and thermal stability of spc-COF, and the unique hydrophilic covalent triazine groups, hydrophobic benzene rings and other groups that can provide a variety of interactions such as hydrophobicity, π-π stacking, hydrogen bonding and hydrophilicity of the prepared SiO@spc-COF stationary phases, they exhibit excellent molecular shape selectivity and resolution in separating geometrical isomers. These geometric isomers include isomers such as polycyclic aromatic hydrocarbons (PAHs), tocopherols, carotenoids, diethylstilbestrol, 1,4-cyclohexanediol and astaxanthin. Compared to commercial C columns, this column has more flexible selectivity and higher separation performance. In addition, due to the introduction of hydrophobicity, π-π stacking action and hydrophilic triazine components, the SiO@spc-COF stationary phase also has RPLC/HILIC mixed mode characteristics. Baseline separations of monosubstituted benzenes, alkylbenzenes, positional isomers, sulfonamides, benzoic acid, anilines, nucleosides and nucleobases compounds were achieved on SiO@spc-COF packed columns. This successful application highlights the great potential of spc-COF for the separation of geometrical isomers, and provides a way to overcome the stability of common imine-bonded COFs materials in HPLC, as well as to compensate for the shortcomings and deficiencies of a single chromatographic mode in the separation of complex samples. Furthermore, this is the first report of a practical separation of important geometrical isomers using spc-COF materials.
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制备 sp2c-COF 功能化硅胶材料作为色谱固定相,用于高分辨率分离几何异构体
探索和开发新型色谱固定相是提高理化性质相似的几何异构体分离效率的有效方法。共价有机框架(COFs)是一类新型多孔有机聚合物,因其可调整的几何形状和功能性、无限延伸的网络结构以及丰富的相互作用位点,在分离科学领域有着广泛的应用。然而,常见的亚胺键 COF 在 HPLC 中的耐水解性很差。本研究以 2,4,6-三甲基-1,3,5-三嗪(TMT)和 1,3,5-三(4-甲酰基苯基)三嗪(TFPT)为原料、通过自组装单层辅助表面引发的席夫碱介导的羟基-甲醛缩合反应合成了sp碳共轭有机框架(spc-COF),并以CN键负载在二氧化硅基底表面,得到了一种新的分离材料(SiO@spc-COF)。SiO@spc-COF 被用作高效液相色谱(HPLC)填料,用于分离几何异构体。所制备的 SiO@spc-COF 固定相具有优异的面内π-共轭、高度有序和坚固的框架结构、spc-COF 的高化学稳定性和热稳定性,以及独特的亲水共价三嗪基团、疏水苯环和其他基团,可提供多种相互作用,如疏水、π-π 堆积、氢键和亲水性,因此在分离几何异构体时表现出优异的分子形状选择性和分辨率。这些几何异构体包括多环芳烃(PAHs)、生育酚、类胡萝卜素、二乙基芪醇、1,4-环己二醇和虾青素等异构体。与商用 C 色谱柱相比,该色谱柱具有更灵活的选择性和更高的分离性能。此外,由于引入了疏水性、π-π堆积作用和亲水性三嗪成分,SiO@spc-COF 固定相还具有 RPLC/HILIC 混合模式的特点。在 SiO@spc-COF 填料柱上实现了单取代苯、烷基苯、位置异构体、磺酰胺、苯甲酸、苯胺、核苷和核碱基化合物的基线分离。这一成功应用凸显了 spc-COF 在分离几何异构体方面的巨大潜力,为克服普通亚胺键合 COFs 材料在高效液相色谱中的稳定性问题提供了一种方法,同时也弥补了单一色谱模式在分离复杂样品时的缺点和不足。此外,这是首次报道利用 spc-COF 材料分离重要几何异构体的实用方法。
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来源期刊
Microchemical Journal
Microchemical Journal 化学-分析化学
CiteScore
8.70
自引率
8.30%
发文量
1131
审稿时长
1.9 months
期刊介绍: The Microchemical Journal is a peer reviewed journal devoted to all aspects and phases of analytical chemistry and chemical analysis. The Microchemical Journal publishes articles which are at the forefront of modern analytical chemistry and cover innovations in the techniques to the finest possible limits. This includes fundamental aspects, instrumentation, new developments, innovative and novel methods and applications including environmental and clinical field. Traditional classical analytical methods such as spectrophotometry and titrimetry as well as established instrumentation methods such as flame and graphite furnace atomic absorption spectrometry, gas chromatography, and modified glassy or carbon electrode electrochemical methods will be considered, provided they show significant improvements and novelty compared to the established methods.
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