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Phenothiazine Radical Cation Excited States as Super-oxidants for Energy-Demanding Reactions.
Christensen, Joseph A; Phelan, Brian T; Chaudhuri, Subhajyoti; Acharya, Atanu; Batista, Victor S; Wasielewski, Michael R.
Afiliação
  • Christensen JA; Department of Chemistry and Argonne-Northwestern Solar Energy Research (ANSER) Center , Northwestern University , Evanston , Illinois 60208-3113 , United States.
  • Phelan BT; Department of Chemistry and Argonne-Northwestern Solar Energy Research (ANSER) Center , Northwestern University , Evanston , Illinois 60208-3113 , United States.
  • Chaudhuri S; Department of Chemistry and Argonne-Northwestern Solar Energy Research (ANSER) Center , Yale University , New Haven , Connecticut 06520 , United States.
  • Acharya A; Department of Chemistry and Argonne-Northwestern Solar Energy Research (ANSER) Center , Yale University , New Haven , Connecticut 06520 , United States.
  • Batista VS; Department of Chemistry and Argonne-Northwestern Solar Energy Research (ANSER) Center , Yale University , New Haven , Connecticut 06520 , United States.
  • Wasielewski MR; Department of Chemistry and Argonne-Northwestern Solar Energy Research (ANSER) Center , Northwestern University , Evanston , Illinois 60208-3113 , United States.
J Am Chem Soc ; 140(15): 5290-5299, 2018 04 18.
Article em En | MEDLINE | ID: mdl-29589754
We demonstrate that the 10-phenyl-10 H-phenothiazine radical cation (PTZ+•) has a manifold of excited doublet states accessible using visible and near-infrared light that can serve as super-photooxidants with excited-state potentials is excess of +2.1 V vs SCE to power energy demanding oxidation reactions. Photoexcitation of PTZ+• in CH3CN with a 517 nm laser pulse populates a Dn electronically excited doublet state that decays first to the unrelaxed lowest electronic excited state, D1' (τ < 0.3 ps), followed by relaxation to D1 (τ = 10.9 ± 0.4 ps), which finally decays to D0 (τ = 32.3 ± 0.8 ps). D1' can also be populated directly using a lower energy 900 nm laser pulse, which results in a longer D1'→D1 relaxation time (τ = 19 ± 2 ps). To probe the oxidative power of PTZ+• photoexcited doublet states, PTZ+• was covalently linked to each of three hole acceptors, perylene (Per), 9,10-diphenylanthracene (DPA), and 10-phenyl-9-anthracenecarbonitrile (ACN), which have oxidation potentials of 1.04, 1.27, and 1.6 V vs SCE, respectively. In all three cases, photoexcitation wavelength dependent ultrafast hole transfer occurs from Dn, D1', or D1 of PTZ+• to Per, DPA, and ACN. The ability to take advantage of the additional oxidative power provided by the upper excited doublet states of PTZ+• will enable applications using this chromophore as a super-oxidant for energy-demanding reactions.

Texto completo: 1 Base de dados: MEDLINE Idioma: En Ano de publicação: 2018 Tipo de documento: Article

Texto completo: 1 Base de dados: MEDLINE Idioma: En Ano de publicação: 2018 Tipo de documento: Article