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自组装聚(咪唑-钯):在百万分之几到十亿分之几的水平下具有高活性、可重复使用的催化剂。

Self-assembled poly(imidazole-palladium): highly active, reusable catalyst at parts per million to parts per billion levels.

机构信息

RIKEN Advanced Science Institute, Wako, Saitama 351-0198, Japan.

出版信息

J Am Chem Soc. 2012 Feb 15;134(6):3190-8. doi: 10.1021/ja210772v. Epub 2012 Feb 3.

DOI:10.1021/ja210772v
PMID:22260520
Abstract

Metalloenzymes are essential proteins with vital activity that promote high-efficiency enzymatic reactions. To ensure catalytic activity, stability, and reusability for safe, nontoxic, sustainable chemistry, and green organic synthesis, it is important to develop metalloenzyme-inspired polymer-supported metal catalysts. Here, we present a highly active, reusable, self-assembled catalyst of poly(imidazole-acrylamide) and palladium species inspired by metalloenzymes and apply our convolution methodology to the preparation of polymeric metal catalysts. Thus, a metalloenzyme-inspired polymeric imidazole Pd catalyst (MEPI-Pd) was readily prepared by the coordinative convolution of (NH(4))(2)PdCl(4) and poly[(N-vinylimidazole)-co-(N-isopropylacrylamide)(5)] in a methanol-water solution at 80 °C for 30 min. SEM observation revealed that MEPI-Pd has a globular-aggregated, self-assembled structure. TEM observation and XPS and EDX analyses indicated that PdCl(2) and Pd(0) nanoparticles were uniformly dispersed in MEPI-Pd. MEPI-Pd was utilized for the allylic arylation/alkenylation/vinylation of allylic esters and carbonates with aryl/alkenylboronic acids, vinylboronic acid esters, and tetraaryl borates. Even 0.8-40 mol ppm Pd of MEPI-Pd efficiently promoted allylic arylation/alkenylation/vinylation in alcohol and/or water with a catalytic turnover number (TON) of 20,000-1,250,000. Furthermore, MEPI-Pd efficiently promoted the Suzuki-Miyaura reaction of a variety of inactivated aryl chlorides as well as aryl bromides and iodides in water with a TON of up to 3,570,000. MEPI-Pd was reused for the allylic arylation and Suzuki-Miyaura reaction of an aryl chloride without loss of catalytic activity.

摘要

金属酶是具有重要活性的必需蛋白质,可促进高效酶反应。为了确保催化活性、稳定性和可重复使用性,实现安全、无毒、可持续的化学和绿色有机合成,开发受金属酶启发的聚合物负载金属催化剂非常重要。在这里,我们提出了一种受金属酶启发的聚(咪唑-丙烯酰胺)和钯物种的高活性、可重复使用、自组装催化剂,并将我们的卷积方法应用于聚合金属催化剂的制备。因此,通过(NH4)2PdCl4和聚[(N-乙烯基咪唑)-共-(N-异丙基丙烯酰胺)(5)]在甲醇-水溶液中的配位卷积,在 80°C 下 30 分钟即可轻松制备受金属酶启发的聚合物咪唑钯催化剂(MEPI-Pd)。SEM 观察表明 MEPI-Pd 具有球形聚集、自组装结构。TEM 观察和 XPS 和 EDX 分析表明,PdCl2和 Pd(0)纳米颗粒均匀分散在 MEPI-Pd 中。MEPI-Pd 用于芳基/烯基硼酸、乙烯基硼酸酯和四芳基硼酸酯与烯丙基酯和碳酸酯的烯丙基芳基化/烯基化/乙烯基化。即使 MEPI-Pd 中的 Pd 为 0.8-40 mol ppm,也能在醇和/或水中以 20,000-1,250,000 的催化周转数(TON)高效促进烯丙基芳基化/烯基化/乙烯基化。此外,MEPI-Pd 还能在水中高效促进各种失活芳基氯化物以及芳基溴化物和碘化物的 Suzuki-Miyaura 反应,TON 高达 3,570,000。MEPI-Pd 可重复用于芳基氯化物的烯丙基芳基化和 Suzuki-Miyaura 反应,而不会失去催化活性。

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