Electronic and Steric Tuning of Catalytic H 2 Evolution by Cobalt Complexes with Pentadentate Polypyridyl-Amine Ligands

Structural modifications of molecular cobalt catalysts have provided important insights into the structure-function relationship for the hydrogen evolution reaction. We have shown that replacement of equatorial pyridines with more basic and conjugate isoquinoline groups of a pentadentate ligand resu...

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Veröffentlicht in:Journal of the American Chemical Society 2018-07, Vol.140 (29), p.9219-9229
Hauptverfasser: Wang, Ping, Liang, Guangchao, Reddy, M Ramana, Long, Melissa, Driskill, Kandria, Lyons, Christian, Donnadieu, Bruno, Bollinger, John C, Webster, Charles Edwin, Zhao, Xuan
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container_end_page 9229
container_issue 29
container_start_page 9219
container_title Journal of the American Chemical Society
container_volume 140
creator Wang, Ping
Liang, Guangchao
Reddy, M Ramana
Long, Melissa
Driskill, Kandria
Lyons, Christian
Donnadieu, Bruno
Bollinger, John C
Webster, Charles Edwin
Zhao, Xuan
description Structural modifications of molecular cobalt catalysts have provided important insights into the structure-function relationship for the hydrogen evolution reaction. We have shown that replacement of equatorial pyridines with more basic and conjugate isoquinoline groups of a pentadentate ligand results in lower overpotential and higher catalytic activity for electro- and photolytic H production in aqueous solutions. To fully understand the electronic and steric effects of the axial group that lies trans to the proposed cobalt hydride intermediate, isoquinoline groups were introduced in two new pentadentate ligands, N, N-bis(2-pyridinylmethyl)[3-(2-pyridinyl)isoquinoline)]-1-methanamine (DPA-1-MPI) and N, N-bis(2-pyridinylmethyl)[1-(2-pyridinyl)-isoquinoline)]-3-methanamine (DPA-3-MPI). Despite a slight structural difference of the introduced isoquinoline group, the resulting cobalt complexes display drastic changes in their electro- and photochemical properties. There are positive shifts of 290 and 260 mV, respectively, for the Co /Co and Co -H/Co -H couples from [Co(DPA-1-MPI)(H O)](PF ) to [Co(DPA-3-MPI)(H O)](PF ) , with the former being ∼32 times as active as the latter in photocatalytic H production. Density functional theory (DFT) calculations show that the protonation of Co to yield the Co -H species is energetically more favorable for [Co(DPA-1-MPI)(H O)](PF ) than that of [Co(DPA-3-MPI)(H O)](PF ) . Both experimental results and DFT computations suggest that the presence of a planar conjugate bipyridyl unit or its isoquinoline derivative is a key feature for stabilizing low valent Co species toward proton binding. The incorporation of an electron-donating group trans to the proposed Co-H species also facilitates proton binding and H-H bond formation, which is proposed to occur by the heterolytic coupling of Co -H species. The overall catalytic H evolution is presented as the modified electron transfer (E)-proton transfer (C)-electron transfer (E)-proton transfer (C) (mod-ECEC) pathway. This study provides important new insight into the electronic and steric factors controlling catalytic H production by Co complexes with pentadentate ligands.
doi_str_mv 10.1021/jacs.8b05108
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We have shown that replacement of equatorial pyridines with more basic and conjugate isoquinoline groups of a pentadentate ligand results in lower overpotential and higher catalytic activity for electro- and photolytic H production in aqueous solutions. To fully understand the electronic and steric effects of the axial group that lies trans to the proposed cobalt hydride intermediate, isoquinoline groups were introduced in two new pentadentate ligands, N, N-bis(2-pyridinylmethyl)[3-(2-pyridinyl)isoquinoline)]-1-methanamine (DPA-1-MPI) and N, N-bis(2-pyridinylmethyl)[1-(2-pyridinyl)-isoquinoline)]-3-methanamine (DPA-3-MPI). Despite a slight structural difference of the introduced isoquinoline group, the resulting cobalt complexes display drastic changes in their electro- and photochemical properties. There are positive shifts of 290 and 260 mV, respectively, for the Co /Co and Co -H/Co -H couples from [Co(DPA-1-MPI)(H O)](PF ) to [Co(DPA-3-MPI)(H O)](PF ) , with the former being ∼32 times as active as the latter in photocatalytic H production. Density functional theory (DFT) calculations show that the protonation of Co to yield the Co -H species is energetically more favorable for [Co(DPA-1-MPI)(H O)](PF ) than that of [Co(DPA-3-MPI)(H O)](PF ) . Both experimental results and DFT computations suggest that the presence of a planar conjugate bipyridyl unit or its isoquinoline derivative is a key feature for stabilizing low valent Co species toward proton binding. The incorporation of an electron-donating group trans to the proposed Co-H species also facilitates proton binding and H-H bond formation, which is proposed to occur by the heterolytic coupling of Co -H species. The overall catalytic H evolution is presented as the modified electron transfer (E)-proton transfer (C)-electron transfer (E)-proton transfer (C) (mod-ECEC) pathway. 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We have shown that replacement of equatorial pyridines with more basic and conjugate isoquinoline groups of a pentadentate ligand results in lower overpotential and higher catalytic activity for electro- and photolytic H production in aqueous solutions. To fully understand the electronic and steric effects of the axial group that lies trans to the proposed cobalt hydride intermediate, isoquinoline groups were introduced in two new pentadentate ligands, N, N-bis(2-pyridinylmethyl)[3-(2-pyridinyl)isoquinoline)]-1-methanamine (DPA-1-MPI) and N, N-bis(2-pyridinylmethyl)[1-(2-pyridinyl)-isoquinoline)]-3-methanamine (DPA-3-MPI). Despite a slight structural difference of the introduced isoquinoline group, the resulting cobalt complexes display drastic changes in their electro- and photochemical properties. There are positive shifts of 290 and 260 mV, respectively, for the Co /Co and Co -H/Co -H couples from [Co(DPA-1-MPI)(H O)](PF ) to [Co(DPA-3-MPI)(H O)](PF ) , with the former being ∼32 times as active as the latter in photocatalytic H production. Density functional theory (DFT) calculations show that the protonation of Co to yield the Co -H species is energetically more favorable for [Co(DPA-1-MPI)(H O)](PF ) than that of [Co(DPA-3-MPI)(H O)](PF ) . Both experimental results and DFT computations suggest that the presence of a planar conjugate bipyridyl unit or its isoquinoline derivative is a key feature for stabilizing low valent Co species toward proton binding. The incorporation of an electron-donating group trans to the proposed Co-H species also facilitates proton binding and H-H bond formation, which is proposed to occur by the heterolytic coupling of Co -H species. The overall catalytic H evolution is presented as the modified electron transfer (E)-proton transfer (C)-electron transfer (E)-proton transfer (C) (mod-ECEC) pathway. 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We have shown that replacement of equatorial pyridines with more basic and conjugate isoquinoline groups of a pentadentate ligand results in lower overpotential and higher catalytic activity for electro- and photolytic H production in aqueous solutions. To fully understand the electronic and steric effects of the axial group that lies trans to the proposed cobalt hydride intermediate, isoquinoline groups were introduced in two new pentadentate ligands, N, N-bis(2-pyridinylmethyl)[3-(2-pyridinyl)isoquinoline)]-1-methanamine (DPA-1-MPI) and N, N-bis(2-pyridinylmethyl)[1-(2-pyridinyl)-isoquinoline)]-3-methanamine (DPA-3-MPI). Despite a slight structural difference of the introduced isoquinoline group, the resulting cobalt complexes display drastic changes in their electro- and photochemical properties. There are positive shifts of 290 and 260 mV, respectively, for the Co /Co and Co -H/Co -H couples from [Co(DPA-1-MPI)(H O)](PF ) to [Co(DPA-3-MPI)(H O)](PF ) , with the former being ∼32 times as active as the latter in photocatalytic H production. Density functional theory (DFT) calculations show that the protonation of Co to yield the Co -H species is energetically more favorable for [Co(DPA-1-MPI)(H O)](PF ) than that of [Co(DPA-3-MPI)(H O)](PF ) . Both experimental results and DFT computations suggest that the presence of a planar conjugate bipyridyl unit or its isoquinoline derivative is a key feature for stabilizing low valent Co species toward proton binding. The incorporation of an electron-donating group trans to the proposed Co-H species also facilitates proton binding and H-H bond formation, which is proposed to occur by the heterolytic coupling of Co -H species. The overall catalytic H evolution is presented as the modified electron transfer (E)-proton transfer (C)-electron transfer (E)-proton transfer (C) (mod-ECEC) pathway. This study provides important new insight into the electronic and steric factors controlling catalytic H production by Co complexes with pentadentate ligands.</abstract><cop>United States</cop><pmid>29949370</pmid><doi>10.1021/jacs.8b05108</doi><tpages>11</tpages><orcidid>https://orcid.org/0000-0001-7235-958X</orcidid><orcidid>https://orcid.org/0000-0002-6917-2957</orcidid><orcidid>https://orcid.org/0000-0003-3019-2261</orcidid></addata></record>
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