Murugan Ramadurai, Bhargava Reddy Mandapati, Pandurangan Prabhu, Anandhan Ramasamy
Department of Physical Chemistry, School of Chemical Science, University of Madras, Guindy Campus, Chennai 600025, India.
Department of Organic Chemistry, School of Chemical Science, University of Madras, Guindy Campus, Chennai 600025, India.
ACS Appl Mater Interfaces. 2020 Dec 16;12(50):56004-56016. doi: 10.1021/acsami.0c17324. Epub 2020 Dec 1.
We report a facile synthesis of a thiolate-protected water-soluble ultrasmall cubic copper nanocluster-based metal-organic framework (CuMOF) as an efficient and chemoselective catalyst for the azide-alkyne click reaction. Interestingly, the diffuse reflectance spectra of CuMOFs exhibit three discrete plasmon bands at 463, 505, and 674 nm, which are similar to those corresponding to the fingerprint region of thiolate-protected atomically precise Au nanoclusters; hence, CuMOFs are termed as gold-like ultrasmall cubic copper nanoclusters. The high-resolution transmission electron microscopy (HRTEM) and powder X-ray diffraction (XRD) patterns confirm the cubic morphology of CuMOFs with nanoclusters showing particle size distribution of ∼2-12 nm. The matrix-assisted laser desorption ionization (MALDI) spectrum of CuMOFs is attributed to the individual particles consisting of few Cu(SR) with Cu(0) core atoms and Cu(I)SR staples, i.e., Cu(SR), Cu(SR), Cu(SR), and Cu(SR). To our surprise, the unsymmetric bistriazoles resulting from the click reaction of bifunctional azides and alkynes in the presence of CuMOFs were achieved by step-by-step conversion of the terminal azide selectively with maximum yield in the range of 70-88%. The nitrogen adsorption-desorption studies confirm the size-dependent surface area, pore volume, and pore size for the CuMOFs prepared by varying metal-to-ligand ratios. The plausible mechanism for the selective mono-click at CuMOFs suggests the existence of bifunctional terminal interactions via thiol and sulfonate groups that might have provided the site-isolation-based active sites for selective catalysis. The easy recovery of CuMOFs and their reusability up to 5 times without significant loss of activity are very promising for the selective organic conversions in pharmaceutical and industrial formulations.
我们报道了一种简便的合成方法,可制备出一种硫醇盐保护的水溶性超小立方铜纳米簇基金属有机框架(CuMOF),它是用于叠氮化物-炔烃点击反应的高效且具有化学选择性的催化剂。有趣的是,CuMOF的漫反射光谱在463、505和674nm处呈现出三个离散的等离子体带,这与硫醇盐保护的原子精确金纳米簇的指纹区域相对应的那些带相似;因此,CuMOF被称为类金超小立方铜纳米簇。高分辨率透射电子显微镜(HRTEM)和粉末X射线衍射(XRD)图谱证实了CuMOF的立方形态,纳米簇的粒径分布约为2-12nm。CuMOF的基质辅助激光解吸电离(MALDI)光谱归因于由少数具有Cu(0)核心原子和Cu(I)SR主链的Cu(SR)组成的单个颗粒,即Cu(SR)、Cu(SR)、Cu(SR)和Cu(SR)。令我们惊讶的是,在CuMOF存在下,双功能叠氮化物和炔烃的点击反应产生的不对称双三唑是通过末端叠氮化物的逐步选择性转化实现的,最大产率在70-88%范围内。氮吸附-脱附研究证实了通过改变金属与配体比例制备的CuMOF的尺寸依赖性表面积、孔体积和孔径。CuMOF上选择性单点击的合理机制表明,通过硫醇和磺酸盐基团存在双功能末端相互作用,这可能为选择性催化提供了基于位点隔离的活性位点。CuMOF易于回收且可重复使用高达5次而活性无明显损失,这对于药物和工业配方中的选择性有机转化非常有前景。