4.6 Article

Carbene functionalization of porphyrinoids through tosylhydrazones

Journal

ORGANIC & BIOMOLECULAR CHEMISTRY
Volume 19, Issue 42, Pages 9199-9210

Publisher

ROYAL SOC CHEMISTRY
DOI: 10.1039/d1ob01626a

Keywords

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Funding

  1. RFBR [19-3390234]
  2. Program of Fundamental Scientific Studies of the State Academies of Sciences for 2013-2020

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The study demonstrates carbene functionalization of porphyrinoids through metal-free thermal decomposition of their tosylhydrazones, resulting in the synthesis of tetrapyrrolyl carbenes and the formation of cyclopropane and cyclopentane derivatives. The stability and optical properties of the products were improved, and a new synthetic pathway for tailoring tetrapyrrolic macrocycles was established, allowing the obtainment of new tetrapyrrole derivatives.
Here, we investigated methods for carbene functionalization of porphyrinoids through metal catalyst-free thermal decomposition of their tosylhydrazones. For the first time, tetrapyrrolyl substituted carbenes were obtained via thermolysis of tosylhydrazones of the corresponding tetrapyrrolyl aldehydes and ketones in the presence of a base. The carbenes formed reacted thermally with substrates without a metal catalyst or light irradiation. Carbenes at the beta-pyrrolic position of porphyrinoids reacted with styrene leading to cyclopropane derivatives of tetrapyrroles. Carbenes also reacted with 1,4-dioxane with their insertion into the C-H bond yielding a tetrapyrrole 1,4-dioxane conjugate. Thermolysis of tosylhydrazones of meso-formyl-beta-octaalkylporphyrinoids led exclusively to the corresponding cyclopentane fused porphyrinoids via intramolecular carbene C-H insertion. A plausible reaction mechanism was discussed based on DFT calculations of the intermediates. The tetrapyrrolyl carbenes were found to be considerably more stable than other carbenes. The products of the functionalization of porphyrinoids via hydrazone formation and subsequent carbene reactions exhibited modified optical spectra. The method for carbene functionalization of porphyrinoids through thermal decomposition of their tosylhydrazones created a new synthetic pathway for tailoring the perimeter of tetrapyrrolic macrocycles. Moreover, this method allows the obtainment of dyes with controllable spectral optical properties. In particular, new tetrapyrrole derivatives possessing phytoporphyrin carbon skeletons which have not been accessible were obtained using a convenient straightforward procedure.

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