Biological metal–organic frameworks for natural gas purification and MTO product separation

Wen Li, Dan Wang, Yi Wang, Zhaohui Shi, Junxue Liu, Lirong Zhang, Dongxu Xue, Yunlin Liu
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Abstract

The use of porous solid adsorbents is an effective and excellent approach for the separation and purification of methanol-to-olefins product and methane (CH4). In this particular study, a series of adenine (AD)-based biological metal–organic frameworks (Bio-MOFs) {Their general formula is Cu 2 (AD) 2 (X) 2 [X = formic acid, acetic acid (AA), and propionic acid]} were proposed, which exhibited remarkable efficiency in the purification of CH4 and the separation of C3H6 from methanol-to-olefins product, ultimately yielding purified C2H4. The experimental findings demonstrate that different terminal ligands induce alterations in the pore microenvironment, consequently leading to variations in adsorption capacities and stability. Specifically, Cu-AD-AA exhibits the highest adsorption capacity and selectivity among the three MOFs, as confirmed by static adsorption isotherm testing and theoretical evaluation using ideal adsorbed solution theory (IAST) simulation. At 298 K and 1 bar, Cu-AD-AA exhibits 786 and 10.9 selectivity for C3H8/CH4 and C3H6/C2H4, respectively, surpassing the majority of MOFs materials. Furthermore, breakthrough experiments conducted in ambient conditions reveal that Cu-AD-AA possesses commendable separation capabilities, enabling one-step purification of C2H4 at varying proportions (C2H4/C3H6 = 50:50, 50:20, and 90:10), along with satisfactory recycling performance. Importantly, the synthesis of Cu-AD-AA utilizes simple and easily obtainable raw materials, thereby offering advantages such as cost-effectiveness, low toxicity, and facile synthesis that enhance its potential for industrial applications.
用于天然气净化和 MTO 产品分离的生物金属有机框架
使用多孔固体吸附剂是分离和提纯甲醇制烯烃产品和甲烷(CH4)的一种有效而出色的方法。本研究提出了一系列基于腺嘌呤(AD)的生物金属有机框架(Bio-MOFs){其通式为 Cu 2 (AD) 2 (X) 2 [X = 甲酸、乙酸(AA)和丙酸]},它们在纯化 CH4 和从甲醇制烯烃产物中分离 C3H6 方面表现出显著的效率,最终得到纯化的 C2H4。实验结果表明,不同的末端配体会引起孔隙微环境的改变,从而导致吸附能力和稳定性的变化。具体来说,Cu-AD-AA 在三种 MOFs 中表现出最高的吸附能力和选择性,这一点已通过静态吸附等温线测试和使用理想吸附溶液理论(IAST)模拟进行的理论评估得到证实。在 298 K 和 1 bar 条件下,Cu-AD-AA 对 C3H8/CH4 和 C3H6/C2H4 的选择性分别为 786 和 10.9,超过了大多数 MOFs 材料。此外,在环境条件下进行的突破性实验表明,Cu-AD-AA 具有令人称道的分离能力,可在不同比例(C2H4/C3H6 = 50:50、50:20 和 90:10)下一步法纯化 C2H4,同时具有令人满意的回收性能。重要的是,Cu-AD-AA 的合成利用了简单易得的原材料,因此具有成本效益高、毒性低和合成简便等优点,提高了其工业应用潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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CiteScore
3.40
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