Transition metal porphyrin complexes explained

thumb|right|220px|A picket-fence porphyrin complex of Fe, with axial coordination sites occupied by methylimidazole (green) and dioxygen (R = amide groups).[1] Transition metal porphyrin complexes are a family of coordination complexes of the conjugate base of porphyrins. Iron porphyrin complexes occur widely in Nature, which has stimulated extensive studies on related synthetic complexes. The metal-porphyrin interaction is a strong one such that metalloporphyrins are thermally robust.[2] [3] They are catalysts and exhibit rich optical properties, although these complexes remain mainly of academic interest.

Structure

Porphyrin complexes consist of a square planar MN4 core. The periphery of the porphyrins, consisting of sp2-hybridized carbons, generally display only small deviations from planarity.[4] Additionally, the metal is often not centered in the N4 plane.[5]

Large metals such as zirconium, tantalum, and molybdenum tend to bind two porphyrin ligands. Some [M(OEP)]2 feature a multiple bonds between the metals.[6]

Formation

Metal porphyrin complexes are almost always prepared by direct reaction of a metal halide with the free porphyrin, abbreviated here as H2P:

MClx + H2P → M(P)Cl2−x + 2HClTwo pyrrole protons are lost. The porphyrin dianion is an L2X2 ligand.

These syntheses require somewhat forcing conditions,[7] consistent with the tight fit of the metal in the N42- "pocket." In nature, the insertion is mediated by chelatase enzymes. The insertion of a metal proceeds by the intermediacy of a "sitting atop complex" (SAC), whereby the entering metal interacts with only one or a few of the nitrogen centers.[8]

In contrast to natural porphyrins, synthetic porphyrin ligands are typically symmetrical (i.e., their dianionic conjugate bases). Two major varieties are well studied, those with substituents at the meso positions, the premier example being tetraphenylporphyrin. These ligands are easy to prepare in one-pot procedures. A large number of aryl groups can be deployed aside from phenyl.

A second class of synthetic porphyrins have hydrogen at the meso positions. Octaethylporphyrin (H2OEP) is the subject of many such studies. It is more expensive than tetraphenylporphyrin.

Protoporphyrin IX, which occurs naturally, can be modified by removal of the vinyl groups and esterification of the carboxylic acid groups to gives deuteroporphyin IX dimethyl ester.[9]

Biomimetic complexes

thumb|left|192px|Protoporphyrin IX is the precursor to heme and closely related to chlorophyll.Iron porphyrin complexes ("hemes") are the dominant metalloporphyrin complexes in nature. Consequently, synthetic iron porphyrin complexes are well investigated. Common derivatives are those of Fe(III) and Fe(II). Complexes of the type Fe(P)Cl are square-pyramidal and high spin with idealized C4v symmetry. Base hydrolysis affords the "mu-oxo dimers" with the formula [Fe(P)]2O. These complexes have been widely investigated as oxidation catalysts.[10] Typical stoichiometries of ferrous porphyrins are Fe(P)L2 where L is a neutral ligand such as pyridine and imidazole. Cobalt(II) porphyrins behave similarly to the ferrous derivatives. They bind O2 to form dioxygen complexes.

Synthetic applications

Catalysts based on synthetic metalloporphyrins have been extensively investigated, although few or no applications exist. Due to their distinctive redox properties, Co(II)–porphyrin-based systems are radical initiators.[11] [12] Some complexes emulate the action of various heme enzymes such as cytochrome P450, lignin peroxidase.[13] [14] Metalloporphyrins are also studied as catalysts for water splitting, with the purpose of generating molecular hydrogen and oxygen for fuel cells.[15]

In addition, porous organic polymers based on porphyrins, along with metal oxide nanoparticles,[16]

Supramolecular chemistry

Porphyrins are often used to construct structures in supramolecular chemistry.[17] These systems take advantage of the Lewis acidity of the metal, typically zinc. An example of a host–guest complex that was constructed from a macrocycle composed of four porphyrins. A guest-free base porphyrin is bound to the center by coordination with its four-pyridine substituents.

See also

References

  1. S. J. Lippard, J. M. Berg “Principles of Bioinorganic Chemistry” University Science Books: Mill Valley, CA; 1994. .
  2. Book: Gary L. . Miessler. Donald Arthur. Tarr. [{{google books |plainurl=y |id=oLQPAQAAMAAJ}} Inorganic Chemistry]. 2004. Pearson Education. 978-0-13-035471-6.
  3. Book: Duward . Shriver. Peter . Atkins. [{{google books |plainurl=y |id=so8oAQAAMAAJ}} Inorganic Chemistry]. 17 February 2006. W. H. Freeman. 978-0-7167-4878-6. Overton. T. L.. Rourke. J. P.. Weller. M. T.. Armstrong. F. A. .
  4. 10.1039/C5CC06254C . Conformational control of cofactors in nature – the influence of protein-induced macrocycle distortion on the biological function of tetrapyrroles . 2015 . Senge . Mathias O. . MacGowan . Stuart A. . O'Brien . Jessica M. . Chemical Communications . 51 . 96 . 17031–17063 . 26482230 . 2262/75305 . free .
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  6. 10.1021/ar00035a004. Multiple Metal-Metal Bonds in 4d and 5d Metal-Porphyrin Dimers. 1993. Collman. James P.. Arnold. Hilary J.. Accounts of Chemical Research. 26. 11. 586–592.
  7. Book: Chang, C. K. . DiNello, R. K. . Dolphin, D.. Inorganic Syntheses . Iron Porphines . . 2007 . 20 . 147–155 . 10.1002/9780470132517.ch35. 9780470132517 .
  8. 10.1021/ic9012153. Sitting-Atop Metallo-Porphyrin Complexes: Experimental and Theoretical Investigations on Such Elusive Species. 2009. De Luca. Giovanna. Romeo. Andrea. Scolaro. Luigi Monsù. Ricciardi. Giampaolo. Rosa. Angela. Inorganic Chemistry. 48. 17. 8493–8507. 19650629.
  9. 10.1021/jo01346a042. Substituted Deuteroporphyrins. I. Reactions at the Periphery of the Porphyrin Ring1. 1966. Caughey. Winslow S.. Alben. James O.. Fujimoto. Wilfred Y.. York. J. Lyndal. The Journal of Organic Chemistry. 31. 8. 2631–2640. 5917451.
  10. 10.1021/acscatal.8b01871. Metalloporphyrins: Bioinspired Oxidation Catalysts. 2018. Pereira. Mariette M.. Dias. Lucas D.. Calvete. Mário J. F.. ACS Catalysis. 8. 11. 10784–10808. 106119734.
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  12. Doyle MP . Exceptional selectivity in cyclopropanation reactions catalyzed by chiral cobalt(II)-porphyrin catalysts . Angewandte Chemie . 48 . 5 . 850–852 . 2009-01-19 . 19117005 . 3517106 . 10.1002/anie.200804940 .
  13. Huang X, Groves JT . Oxygen Activation and Radical Transformations in Heme Proteins and Metalloporphyrins . Chemical Reviews . 118 . 5 . 2491–2553 . March 2018 . 29286645 . 5855008 . 10.1021/acs.chemrev.7b00373 .
  14. Book: Kadish KM, Smith KM, Guilard R . Handbook of porphyrin science with applications to chemistry, physics, materials science, engineering, biology and medicine. 2012. World Scientific. Singapore. 9789814335492.
  15. Zhang W, Lai W, Cao R . Energy-Related Small Molecule Activation Reactions: Oxygen Reduction and Hydrogen and Oxygen Evolution Reactions Catalyzed by Porphyrin- and Corrole-Based Systems . Chemical Reviews . 117 . 4 . 3717–3797 . February 2017 . 28222601 . 10.1021/acs.chemrev.6b00299 .
  16. Kang T, Kim YG, Kim D, Hyeon T . January 2020 . Inorganic nanoparticles with enzyme-mimetic activities for biomedical applications . Coordination Chemistry Reviews . en . 403 . 213092 . 10.1016/j.ccr.2019.213092. 10371/171769 . 209716259 . free .
  17. Kohn E, Shirly D, Fry CH, Caputo GA . 2022-06-14 . Peptide-assisted supramolecular polymerization of the anionic porphyrin meso-tetra (4-sulfonatophenyl)porphine . Peptide Science . 114 . 6 . en . 10.1002/pep2.24288 . 249689192 . 2475-8817. free .