Zeeshan Mohd, Khan Mohammad Yasir, Shahid M, Ikram Saiqa, Ahmad Musheer
Functional Inorganic Materials Lab (FIML), Department of Chemistry, Aligarh Muslim University, Aligarh 202002, India.
Department of Chemistry, Faculty of Sciences, Jamia Millia Islamia (Central University), New Delhi 110025, India.
Dalton Trans. 2025 Jul 22;54(29):11398-11418. doi: 10.1039/d5dt01328c.
In an era where the optimization of CO stands at the frontier of sustainable chemistry, we unveil two architecturally rare, N-rich metal-organic frameworks (MOFs), {Zn(TATAB)(MeNH)(CHOH)} (ZS-2) and {Cu(TATAB)(MeNH)} (ZS-3), meticulously designed using a solvothermal route. These crystalline frameworks manifest a unique topology (3/10/c1 net), elevating them beyond the realm of conventional porous materials. BET analyses reveal remarkably high surface areas, with ZS-2 exhibiting 630.35 m g and ZS-3 reaching 641.36 m g, together with narrow pore-limiting diameters of approximately 2.40 nm and 3.98 nm, respectively. These features underscore their mesoporous nature, rendering them highly suitable for selective molecular sieving and effective CO capture and fixation. ZS-3 shows a high CO uptake of 64 cm g, exceeding both ZS-2 (56 cm g) and many benchmark MOFs reported in the literature. XPS analysis confirms strong metal-CO interactions, as reflected by clear shifts in binding energies from 1022.08 to 1023.52 eV for Zn 2p and from 933.60 to 934.34 eV for Cu 2p, indicating strong chemisorptive affinity. Interestingly, ZS-2 exhibits better catalytic performance, with higher conversion efficiency, greater selectivity, and increased TON and TOF in CO-epoxide cycloaddition under mild conditions at 1 atm and 60 °C. The captured CO was successfully converted into cyclic carbonates, as confirmed by H NMR spectroscopy.
在一个将一氧化碳优化置于可持续化学前沿的时代,我们展示了两种结构罕见、富含氮的金属有机框架材料(MOF),{Zn(TATAB)(MeNH)(CHOH)}(ZS - 2)和{Cu(TATAB)(MeNH)}(ZS - 3),它们是通过溶剂热法精心设计而成的。这些晶体框架呈现出独特的拓扑结构(3/10/c1网络),使其超越了传统多孔材料的范畴。BET分析显示出极高的比表面积,ZS - 2为630.35 m²/g,ZS - 3达到641.36 m²/g,同时孔径限制分别约为2.40纳米和3.98纳米,这些特性突出了它们的介孔性质,使其非常适合选择性分子筛分以及有效的一氧化碳捕获和固定。ZS - 3表现出64 cm³/g的高一氧化碳吸附量,超过了ZS - 2(56 cm³/g)以及文献中报道的许多基准MOF。XPS分析证实了强金属 - 一氧化碳相互作用,锌2p的结合能从1022.08 eV明显位移至1023.52 eV,铜2p的结合能从933.60 eV位移至934.34 eV,这表明具有很强的化学吸附亲和力。有趣的是,ZS - 2在1个大气压和60°C的温和条件下,在一氧化碳 - 环氧化物环加成反应中表现出更好的催化性能,具有更高的转化效率、更大的选择性以及更高的TON和TOF。如¹H NMR光谱所证实,捕获的一氧化碳成功转化为环状碳酸酯。