首页> 外文期刊>Inorganic Chemistry: A Research Journal that Includes Bioinorganic, Catalytic, Organometallic, Solid-State, and Synthetic Chemistry and Reaction Dynamics >Ping-Pong Energy Transfer in a Boron Dipyrromethane Containing Pt(II)–Schiff Base Complex: Synthesis, Photophysical Studies, and Anti-Stokes Shift Increase in Triplet–Triplet Annihilation Upconversion
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Ping-Pong Energy Transfer in a Boron Dipyrromethane Containing Pt(II)–Schiff Base Complex: Synthesis, Photophysical Studies, and Anti-Stokes Shift Increase in Triplet–Triplet Annihilation Upconversion

机译:含有Pt(ii)的硼己二甲烷中的乒乓能量转移 - Schiff碱基复合物:合成,光药研究和抗斯托克斯转移增加三重岩 - 三重岩湮灭上变化

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摘要

A boron dipyrromethane (BDP)-containing Pt(II)–Schiff base complex (Pt-BDP ), showing ping-pong singlet–triplet energy transfer, was synthesized, and the detailed photophysical properties were investigated using various steady-state and time-resolved transient spectroscopies. Femtosecond/nanosecond transient absorption spectroscopies demonstrated that, upon selective excitation of the BDP unit in Pt-BDP at 490 nm, F?rster resonance energy transfer from the BDP unit to the Pt(II) coordination center occurred (6.7 ps), accompanied by an ultrafast intersystem crossing at the Pt(II) coordination center (<1 ps) and triplet–triplet energy transfer back to the BDP moiety (148 ps). These processes generated a triplet state localized at BDP, and the lifetime was 103.2 μs, much longer than the triplet-state lifetime of Pt-Ph (3.5 μs), a complex without the BDP moiety. Finally, Pt-BDP was used as a triplet photosensitizer for triplet–triplet annihilation (TTA) upconversion through selective excitation of the BDP unit or the Pt(II) coordination center at lower excitation energy. An upconversion quantum yield of up to 10% was observed with selective excitation of the BDP moiety, and a large anti-Stokes shift of 0.65 eV was observed upon excitation of the lower-energy band of the Pt(II) coordination center. We propose that using triplet photosensitizers with the ping-pong energy-transfer process may become a useful method for increasing the anti-Stokes shift of TTA upconversion.
机译:合成了硼偶氮甲烷(BDP) - 甲基Pt(II)-Schiff碱基复合物( Pt-BDP),显示出乒乓态三重态能量转移,并采用各种稳态研究了详细的光药性和时间分离的瞬态光谱。 FemtOSeCond /纳秒瞬时吸收光谱证明,在490nm的490nm的BDP单元中的BDP单元的选择性激发时,F≤从BDP单元到PT(II)的协调中心发生(6.7 PS) ,伴随着在Pt(II)的超快交叉处交叉于Pt(II)的协调中心(<1 ps)和三重态 - 三重态能量转移回BDP部分(148 ps)。这些过程在BDP处定位的三重态状态产生,寿命为103.2μs,比 Pt-pH(3.5μs)的三重态寿命长得多,没有BDP部分的复合物。最后,通过在较低激发能量下选择性激发BDP单元或PT(II)配位中心的选择性激发,使用 Pt-BDP作为三重态 - 三联湮灭(TTA)的三重胶囊光敏剂。通过选择性激发BDP部分的选择性激发观察到高达10%的上转化量子产率,并且在PT(II)配位中心的较低能带的激发时观察到0.65eV的大的抗Stokes偏移。我们提出使用具有Ping-Pong能量转移过程的三重态光敏剂可能成为增加TTA上变化的抗Stokes偏移的有用方法。

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    State Key Laboratory of Fine Chemicals School of Chemical Engineering Dalian University of Technology E-208 West Campus 2 Ling Gong Road Dalian 116024 P. R. China;

    Spectroscopy Laboratory for Functional π?Electronic Systems Department of Chemistry Yonsei University Seoul 120-749 Korea;

    Spectroscopy Laboratory for Functional π?Electronic Systems Department of Chemistry Yonsei University Seoul 120-749 Korea;

    State Key Laboratory of Fine Chemicals School of Chemical Engineering Dalian University of Technology E-208 West Campus 2 Ling Gong Road Dalian 116024 P. R. China;

    State Key Laboratory of Fine Chemicals School of Chemical Engineering Dalian University of Technology E-208 West Campus 2 Ling Gong Road Dalian 116024 P. R. China;

    Department of Chemistry University of North Texas 1155 Union Circle P.O. 305070 Denton Texas 76203-5017 United States;

    Department of Chemistry University of North Texas 1155 Union Circle P.O. 305070 Denton Texas 76203-5017 United States;

    State Key Laboratory of Fine Chemicals School of Chemical Engineering Dalian University of Technology E-208 West Campus 2 Ling Gong Road Dalian 116024 P. R. China;

    Spectroscopy Laboratory for Functional π?Electronic Systems Department of Chemistry Yonsei University Seoul 120-749 Korea;

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