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Heterogeneous catalysis by ultra-small bimetallic nanoparticles surpassing homogeneous catalysis for carbon-carbon bond forming reactions

机译:多相催化的双金属超小纳米粒子超过了均相催化碳碳键的形成反应

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摘要

Palladium catalyzed cross-coupling reactions represent a significant advancement in contemporary organic synthesis as these reactions are of strategic importance in the area of pharmaceutical drug discovery and development. Supported palladium-based catalysts are highly sought-after in carbon-carbon bond forming catalytic processes to ensure catalyst recovery and reuse while preventing product contamination. This paper reports the development of heterogeneous Pd-based bimetallic catalysts supported on fumed silica that have high activity and selectivity matching those of homogeneous catalysts, eliminating the catalyst's leaching and sintering and allowing efficient recycling of the catalysts. Palladium and base metal (Cu, Ni or Co) contents of less than 1.0 wt% loading are deposited on a mesoporous fumed silica support (surface area SA(BET)= 350 m(2)g(-1)) using strong electrostatic adsorption (SEA) yielding homogeneously alloyed nanoparticles with an average size of 1.3 nm. All bimetallic catalysts were found to be highly active toward Suzuki cross-coupling (SCC) reactions with superior activity and stability for the CuPd/SiO(2)catalyst. A low CuPd/SiO(2)loading (Pd: 0.3 mol%) completes the conversion of bromobenzene and phenylboronic acid to biphenyl in 30 minutes under ambient conditions in water/ethanol solvent. In contrast, monometallic Pd/SiO2(Pd: 0.3 mol%) completes the same reaction in three hours under the same conditions. The combination of Pd with the base metals helps in retaining the Pd(0)status by charge donation from the base metals to Pd, thus lowering the activation energy of the aryl halide oxidative addition step. Along with its exceptional activity, CuPd/SiO(2)exhibits excellent recycling performance with a turnover frequency (TOF) of 280 000 h(-1)under microwave reaction conditions at 60 degrees C. Our study demonstrates that SEA is an excellent synthetic strategy for depositing ultra-small Pd-based bimetallic nanoparticles on porous silica for SCC. This avenue not only provides highly active and sintering-resistant catalysts but also significantly lowers Pd contents in the catalysts without compromising catalytic activity, making the catalysts very practical for large-scale applications.
机译:钯催化交叉耦合反应代表一个重大进步当代有机合成反应在该地区的战略重要性的制药药物发现和开发。支持palladium-based催化剂是高度受欢迎的碳碳键的形成催化剂催化过程,以确保复苏和重用,防止产品污染。本文报道的发展异构Pd-based双金属催化剂支持,有很高的气相法白炭黑的活动和选择性匹配的均匀催化剂,减少催化剂的浸出和烧结,允许有效的回收的催化剂。或公司)小于1.0 wt %加载内容沉积在介孔的气相法白炭黑的支持(表面积SA(打赌)= 350 (2)g (1))强烈的静电吸附(海)产生均匀合金纳米粒子的平均大小为1.3 nm。被发现是高度活跃的向铃木交叉耦合(SCC)反应与优越活动和稳定CuPd / SiO(2)催化剂。(Pd: 0.3摩尔%)完成转换溴苯联苯和phenylboronic酸在30分钟内环境条件下水/乙醇溶剂。Pd /二氧化硅(Pd: 0.3摩尔%)完成同样的反应在相同的条件下三个小时。与贱金属有助于Pd的组合保留Pd(0)状态的捐赠Pd的贱金属,从而降低了芳基卤氧化的活化能添加的步骤。活动,CuPd / SiO(2)展览优秀的回收性能与营业额的频率(TOF)280 000 h(1)在微波反应条件在60度c。我们的研究表明,海洋是一个很好的沉淀合成策略超薄Pd-based双金属纳米颗粒多孔二氧化硅为鳞状细胞癌。提供高度活跃和sintering-resistant催化剂也显著降低Pd内容在催化剂的前提下催化活性,使催化剂非常实际的大规模应用。

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