首页> 外文期刊>Journal of Materials Chemistry, C. materials for optical and electronic devices >Singlet fission in thin films of metallo-supramolecular polymers with ditopic thiophene-bridged terpyridine ligands
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Singlet fission in thin films of metallo-supramolecular polymers with ditopic thiophene-bridged terpyridine ligands

机译:金属 - 超分子聚合物薄膜的单次裂变,具有Ditopic噻吩 - 桥接钛合物配体

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摘要

The singlet fission (SF) phenomenon is currently investigated for its potential to overcome the Shockley-Queisser energy conversion efficiency limit of single-junction photovoltaic (PV) cells. One of the hurdles of using SF for PV cells is the limited choice among the presently available SF materials. We compare the photophysical behavior of thin solid films of two novel compounds: a ditopic ligand bis(terpyridine-4'-yl) terthiophene (T) and a metallo-supramolecular polymer (MSP), prepared by the coordination of T to Zn2+ ions (PT). The transient absorption kinetics in PT after photoexcitation into its second electronic excited state was consistent with an ultrafast (SF) process with a time constant of 160 fs. The lifetime of such a formed triplet state reached only 1 ns, due to mutual bimolecular annihilation, which also hindered the determination of the yield of the triplet state formation. In contrast, the metal-free thin films of T showed no signs of SF, but rather profound exciton relaxation through an excimer formation. Powder WAXS diffractograms pointed out a lower degree of structural order in the PT than that in the T - which may be the probable reason for differences in energy relaxation pathways of these two materials. To the best of our knowledge, singlet fission has not yet been reported in the MSP class of materials.
机译:目前调查单线裂变(SF)现象,以克服单结光伏(PV)细胞的震撼批次能量转换效率极限。使用SF的PV电池的障碍是目前可用的SF材料中的有限选择。我们比较两种新化合物的薄实心膜的光学性能:通过T至Zn2 +离子的配位制备的Ditopic配体Bis(Terpyridine-4'-Y1)萜烯(T)和金属 - 超分子聚合物(MSP)( PT)。 PT的瞬态吸收动力学进入其第二电子激发状态后PT与超快(SF)过程一致,具有160 fs的时间常数。由于相互双分子湮灭,这种形成的三重态状态的寿命仅达到1ns,这也阻碍了三重态形成的产率的测定。相比之下,T的无金属薄膜没有显示SF的迹象,而是通过准分子形成的激发器弛豫。粉末蜡衍射图在PT中指出的是PT中的较低的结构顺序,而不是T的较低程度的结构顺序 - 这可能是这两种材料的能量松弛途径差异的可能原因。据我们所知,单线股尚未在MSP材料类材料中报告。

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