4.6 Article

Positional Effects from σ-Bonded Platinum(II) on Intersystem Crossing Rates in Perylenediimide Complexes: Synthesis, Structures, and Photophysical Properties

期刊

JOURNAL OF PHYSICAL CHEMISTRY C
卷 122, 期 25, 页码 13848-13862

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acs.jpcc.8b01003

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资金

  1. Air Force Office of Scientific Research through the COMAS MURI Program [FA9550-10-1-0558]
  2. RUDN University Program [5-100]
  3. Ministry of Education and Science of the Russian Federation [RFMEFI61917X0007]
  4. National Science Foundation [PREM DMR-1523611]
  5. Department of the Navy, Office of Naval Research, ONR [N00014-16-1-2985]
  6. Division of Chemical Sciences, Geosciences, and Biosciences, Office of Basic Energy Sciences of the U.S. Department of Energy [DE-SC0011979]
  7. Air Force Institute of Technology (AFIT)

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In this investigation, the synthesis and photo physical properties of a series of new chromophores featuring Pt(II) sigma-bonded to perylenediimide (PDI) cores are reported. A Pt(PPh3)(2)X (X = Cl, Br) moiety was attached to PDI in either the ortho or the bay position (2- or 1-positions respectively) or a Pt(PPh3)2 subunit was used to bridge two bay positions (1- and 12-positions) forming a Pt(II) cyclometalate. Through a combination of steady-state and transient absorption and photoluminescence spectroscopy, the excited-state dynamics of these molecules were revealed, indicating that the Pt atom location on the PDI has a substantial impact on observed intersystem crossing (ISC) rates. The ISC time constants for the bay-substituted and cyclometalated PDIs are between 2.67 and 1.29 ns, respectively, determined by the singlet fluorescence decays from the initially populated singlet excited states. In the case of the ortho-substituted PDI, ISC to the triplet state occurs on the ultrafast time scale with a time constant of 345 fs, determined through ultrafast transient absorption spectroscopy. In all instances, the measured PDI-based fluorescence quantum yields quantitatively correlate with the measured ISC rates leaving little doubt that variation in the Pt(II) substitution position(s) markedly influence the resultant photophysics. Electronic structure calculations suggest differing amounts of metal-based contributions in the lowest excited states as a function of substitution position, supporting the trend of the observed ISC rates.

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