4.6 Article

A heterogeneous iridium single-atom-site catalyst for highly regioselective carbenoid O-H bond insertion

期刊

NATURE CATALYSIS
卷 4, 期 6, 页码 523-531

出版社

NATURE RESEARCH
DOI: 10.1038/s41929-021-00637-7

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资金

  1. Shanghai Municipal Science and Technology Major Project [2018SHZDZX03]
  2. Program of Introducing Talents of Discipline to Universities [B16017]
  3. National Key R&D Program of China [2018YFA0702003]
  4. National Natural Science Foundation of China [21890383]
  5. Youth Innovation Promotion Association of Chinese Academy of Sciences [2018017]
  6. Office of Science, Office of Basic Energy Science of the US Department of Energy at Lawrence Berkeley National Laboratory [DE-AC0205CH1123]
  7. Division of Chemical Sciences, Geosciences, and Bioscience of the US Department of Energy at Lawrence Berkeley National Laboratory [DE-AC0205CH1123]

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The strategy of selective carbenoid O-H insertion using an engineered heterogeneous iridium single-atom catalyst provides opportunities for organic transformations by merging material science and catalysis. This catalytic protocol delivers excellent selectivities for the functionalization of aliphatic over phenolic O-H bonds, showcasing a superior site-selectivity of a heterogeneous single-atom catalyst.
Transition-metal-catalysed carbenoid insertion of hydroxyl groups represents a robust and versatile method to forge C-O bonds. Achieving site-selective functionalization of alcohols using this transformation has undoubted synthetic value but remains challenging. Here we report a strategy for selective carbenoid O-H insertion that exploits an engineered heterogeneous iridium single-atom catalyst, thus providing opportunities for organic transformations by merging material science and catalysis. This catalytic protocol delivers excellent selectivities (up to 99:1) for the functionalization of aliphatic over phenolic O-H bonds, whereas the analogous homogeneous catalyst, Ir(ttp)COCI (ttp = 5,11),15,20-tetra-p-tolylporphyrinato), provided modest preferences. Density-functional-theory calculations suggest that the site-selectivity derives from the lower oxidation state of the iridium metal centre in the heterogeneous catalyst and its impact on the absorption energies of the reactants. These results showcase an example of a heterogeneous single-atom catalyst providing superior site-selectivity and provide a complementary strategy to address challenges in catalysis for organic synthesis.

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