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Cucurbit[6]uril-Stabilized Palladium Nanoparticles as a Highly Active Catalyst for Chemoselective Hydrogenation of Various Reducible Groups in Aqueous Media

机译:Cucurbit [6]尿液稳定的钯纳米颗粒作为水性培养基中各种可还原基团化学选择性氢化的高度活性催化剂

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Herein, we report the synthesis, characterization, and application of uniformly dispersed palladium nanoparticles supported on cucurbit[6]uril. The 2.56 wt% Pd was loaded on cucurbit[ 6]uril by impregnation method. Cucurbit[6]uril is a macrocyclic compound in which six glycoluril units are joined with twelve methylene bridges which not only act as support but also helped in stabilizing Pd nanoparticles. The synthesized catalyst was thoroughly characterized by various physicochemical methods. The high resolution transmission electron microscopic analysis revealed the uniform distribution of Pd nanoparticles with average size of ~3 nm over the cucurbit[6]uril surface. Furthermore, the synthesized catalyst was used for the chemoselective hydrogenation of various reducible (epoxide, olefin, carbonyls, nitrile, azo, imines and nitroarenes) groups with excellent conversion, selectivity (> 99%) and high turnover frequency (up to 2,05,882 h~(-1)) in aqueous and in some cases with water-THF mixture. Also, the catalyst was successfully recycled several times (>10 times) without losing any significant conversion and selectivity. Moreover, the leaching results were confirmed by analyzing reaction mixture by inductively coupled plasma atomic emission spectroscopy. Furthermore, the kinetic studies reveal the reaction rate depends on substrate concentration. The reaction mechanism was investigated by studying the reaction through drift FTIR studies.
机译:在此,我们报告了在墨西哥葫芦[6]乌里尔支持的均匀分散的钯纳米颗粒的合成,表征和应用。通过浸渍法将2.56 wt%PD加载在杯子[6]尿中。 Cucurbit [6]乌里尔是一种大环化合物,其中六个糖醇单元与十二种亚甲基桥一起连接起来,不仅充当支撑,而且还有助于稳定PD纳米颗粒。合成的催化剂以各种理化方法的彻底特征。高分辨率透射电子显微镜分析表明,在墨西哥cor虫[6]尿表面平均大小约为3 nm的PD纳米颗粒的均匀分布。此外,将合成的催化剂用于各种可还原的化学选择性氢化(环氧化物,烯烃,羰基,硝酸,氮,偶氮,亚胺和氮气)组,具有出色的转化,选择性,选择性(> 99%)和高传递频率(高达2,05,882,882,882 H〜(-1))在水性中,在某些情况下具有水-THF混合物。同样,该催化剂被成功地回收了几次(> 10次),而不会失去任何显着的转化和选择性。此外,通过电感耦合血浆原子发射光谱法分析反应混合物,证实了浸出结果。此外,动力学研究表明反应速率取决于底物浓度。通过通过漂移FTIR研究研究反应来研究反应机制。

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