Controlling the Singlet−Triplet Splitting in Bisverdazyl Diradicals: Steps toward Magnetic Polymers
Michael T. Green, Thomas A. McCormick
Abstract
Michael T. Green, Thomas A. McCormick
Abstract
Density functional calculations were performed on 1,1‘,5,5‘-tetramethyl-6,6‘-dioxo-3,3‘-biverdazyl diradical (BVD) and BVD[CuI(PL 3 )] 2 complexes (L = H, Me, OH, OMe, F) in order to investigate how Cu chelation affects the singlet−triplet splitting of the verdazyl system. It was found that donating ligands on Cu destabilize the singlet ground state. Size was also found to play a role, as smaller ligands allow for closer Cu−verdazyl contacts. Although a triplet ground state was not obtained for any of the molecules examined, a very small splitting of 40 cm - 1 was calculated for the phosphine complex.
OpenAlex reports 28 citations for this work. Citation counts describe recorded attention and do not establish research quality.
A contribution statement is not available in the OpenAlex record.
Method details are not available in the OpenAlex metadata.
Findings are not separately available in the OpenAlex metadata.
Limitations are not available in the OpenAlex metadata.
Application details are not available in the OpenAlex metadata.
Density functional calculations were performed on 1,1‘,5,5‘-tetramethyl-6,6‘-dioxo-3,3‘-biverdazyl diradical (BVD) and BVD[CuI(PL 3 )] 2 complexes (L = H, Me, OH, OMe, F) in order to investigate how Cu chelation affects the singlet−triplet splitting of the verdazyl system. It was found that donating ligands on Cu destabilize the singlet ground state. Size was also found to play a role, as smaller ligands allow for closer Cu−verdazyl contacts. Although a triplet ground state was not obtained for any of the molecules examined, a very small splitting of 40 cm - 1 was calculated for the phosphine complex.
Key concepts: Diradical, Chemistry, Singlet state, Phosphine, Triplet state, Ground state, Molecule, Photochemistry