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Synthesis and characterization of a series of novel rhodium and iridium complexes containing polypyridyl bridging ligands: Potential uses in the development of multimetal catalysts for carbon dioxide reduction

Journal Article · · Inorganic Chemistry; (USA)
DOI:https://doi.org/10.1021/ic00345a005· OSTI ID:6171051
A series of bis chelate rhodium(III) and iridium(III) complexes containing polypyridyl bridging ligands have been prepared. Complexes of the type (Rh(L){sub 2}Bt{sub 2}){sup +} and (Ir(L){sub 2}Cl{sub 2}){sup +} (where L = 2,2{prime}-bipyrimidine (bpm), 2,3-bis(2-pyridyl)pyrazine (dpp), 2,3-bis(2-pyridyl)quinoxaline (dpq), or 2,3-bis(2-pyridyl)benzoquinoxaline (dpb)) have been prepared, and their syntheses and characterization are reported herein. The complex (Rh(dpq){sub 2}Br{sub 2})(PF{sub 6}){center dot}CH{sub 3}CN and the ligand 2,3-bis(2-pyridyl)quinoxaline have been crystallized and the crystal structures determined. The electrochemical and spectroscopic properties of these novel bridging ligand complexes differ considerably from those of the previously prepared (2,2{prime}-bipyridine)rhodium and iridium complexes. All of the bridging ligands used are easier to reduce than bipyridine. Thus, the complexes reported here are easier to reduce and exhibit electronic transitions at lower energy. A number of these new polypyridyl bridging ligand rhodium and iridium complexes catalyze the reduction of carbon dioxide to formate. Remote nitrogens on the polypyridyl bridging ligand rhodium and iridium complexes catalyze the reduction of carbon dioxide to formate. Remote nitrogens on the polypyridyl bridging ligands make these complexes ideal building blocks for the development of multimetal systems. 35 refs., 7 figs., 10 tabs.
OSTI ID:
6171051
Journal Information:
Inorganic Chemistry; (USA), Journal Name: Inorganic Chemistry; (USA) Vol. 29:20; ISSN 0020-1669; ISSN INOCA
Country of Publication:
United States
Language:
English