Department of Chemistry, University of Kansas, 1251 Wescoe Hall Drive, Lawrence, KS, 66045, USA.
ChemSusChem. 2017 Nov 23;10(22):4589-4598. doi: 10.1002/cssc.201701416. Epub 2017 Nov 2.
We demonstrate that [CpRh] complexes bearing substituted 2,2'-bipyridyl ligands are effective hydrogen evolution catalysts (Cp=η -pentamethylcyclopentadienyl). Disubstitution (at the 4 and 4' positions) of the bipyridyl ligand (namely -tBu, -H, and -CF ) modulates the catalytic overpotential, in part due to involvement of the reduced ligand character in formally rhodium(I) intermediates. These reduced species are synthesized and isolated here; protonation results in formation of complexes bearing the unusual η -pentamethylcyclopentadiene ligand, and the properties of these protonated intermediates further govern the catalytic performance. Electrochemical studies suggest that multiple mechanistic pathways are accessible, and that the operative pathway depends on the applied potential and solution conditions. Taken together, these results suggest synergy in metal-ligand cooperation that modulates the mechanisms of fuel-forming catalysis with organometallic compounds bearing multiple non-innocent ligands.
我们证明了带有取代的 2,2'-联吡啶配体的 [CpRh] 配合物是有效的析氢催化剂(Cp=η- 五甲基环戊二烯基)。联吡啶配体的二取代(在 4 位和 4'位)(即 -tBu、-H 和 -CF )调节了催化过电势,部分原因是还原配体性质参与了形式上的铑(I)中间体。这些还原物种在这里被合成和分离;质子化导致形成具有不寻常的 η- 五甲基环戊二烯基的配合物,这些质子化中间体的性质进一步控制了催化性能。电化学研究表明,多种反应途径是可行的,并且有效的反应途径取决于施加的电势和溶液条件。总之,这些结果表明,在具有多个非中性配体的金属-配体配合物中,金属-配体合作的协同作用调节了燃料形成催化的机制。