Potocny Andrea M, Pistner Allen J, Yap Glenn P A, Rosenthal Joel
Department of Chemistry and Biochemistry, University of Delaware , Newark, Delaware 19716, United States.
Inorg Chem. 2017 Nov 6;56(21):12703-12711. doi: 10.1021/acs.inorgchem.7b00796. Epub 2017 Oct 9.
The synthesis, electrochemistry, and photophysical characterization of a 10,10-dimethyl-5,15-bis(pentafluorophenyl)biladiene (DMBil1) linear tetrapyrrole supporting Pd or Pt centers is presented. Both of these nonmacrocyclic tetrapyrrole platforms are robust and easily prepared via modular routes. X-ray diffraction experiments reveal that the Pd[DMBil1] and Pt[DMBil1] complexes adopt similar structures and incorporate a single Pd and Pt center, respectively. Additionally, electrochemical experiments revealed that both Pd[DMBil1] and Pt[DMBil1] can undergo two discrete oxidation and reduction processes. Spectroscopic experiments carried out for Pd[DMBil1] and Pt[DMBil1] provide further understanding of the electronic structure of these systems. Both complexes strongly absorb light in the UV-visible region, especially in the 350-600 nm range. Both Pd[DMBil1] and Pt[DMBil1] are luminescent under a nitrogen atmosphere. Upon photoexcitation of Pd[DMBil1], two emission bands are observed; fluorescence is detected from ∼500-700 nm and phosphorescence from ∼700-875 nm. Photoexcitation of Pt[DMBil1] leads only to phosphorescence, presumably due to enhanced intersystem crossing imparted by the heavier Pt center. Phosphorescence from both complexes is quenched under air due to energy transfer from the excited triplet state to ground state oxygen. Accordingly, irradiation with light of λ ≥ 500 nm prompts Pd[DMBil1] and Pt[DMBil1] to photosensitize the generation of O (singlet oxygen) with impressive quantum yields of 80% and 78%, respectively. The synthetic accessibility of these complexes coupled with their ability to efficiently photosensitize O may make them attractive platforms for development of new agents for photodynamic therapy.
本文介绍了一种支持钯或铂中心的10,10 - 二甲基 - 5,15 - 双(五氟苯基)双二烯(DMBil1)线性四吡咯的合成、电化学和光物理特性。这两种非大环四吡咯平台都很稳定,并且可以通过模块化路线轻松制备。X射线衍射实验表明,Pd[DMBil1]和Pt[DMBil1]配合物具有相似的结构,分别包含一个单一的钯和铂中心。此外,电化学实验表明,Pd[DMBil1]和Pt[DMBil1]都可以经历两个离散的氧化和还原过程。对Pd[DMBil1]和Pt[DMBil1]进行的光谱实验进一步加深了对这些体系电子结构的理解。两种配合物在紫外 - 可见光区域都有强烈的吸收,特别是在350 - 600 nm范围内。Pd[DMBil1]和Pt[DMBil1]在氮气气氛下均有发光现象。对Pd[DMBil1]进行光激发时,观察到两个发射带;在约500 - 700 nm处检测到荧光,在约700 - 875 nm处检测到磷光。对Pt[DMBil1]进行光激发仅产生磷光,这可能是由于较重的铂中心增强了系间窜越。由于从激发三重态到基态氧的能量转移,两种配合物在空气中的磷光都会猝灭。因此,用波长≥500 nm的光照射会促使Pd[DMBil1]和Pt[DMBil1]分别以80%和78%的可观量子产率光敏化单线态氧(O)的生成。这些配合物的合成可及性及其有效光敏化O的能力可能使其成为开发新型光动力治疗药物的有吸引力的平台。