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首页> 外文期刊>Journal of Materials Chemistry, A. Materials for energy and sustainability >Engineering highly efficient Eu(in)-based tri-ureasil hybrids toward luminescent solar concentrators
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Engineering highly efficient Eu(in)-based tri-ureasil hybrids toward luminescent solar concentrators

机译:为发光太阳能聚光器设计高效的基于Eu(in)的三脲混合物

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Following a computational-experimental approach, a highly luminescent |3-diketonate-europium(iii) complex containing 2-thenoyltrifluoracetonate (tta~-) and 5,6-epoxy-5,6-dihydro-[1,10] phenanthroline (ephen) ligands, Eu(tta)3ephen (II), was theoretically studied by DFT/TD-DFT calculations, synthesized from Eu(tta)3(H2O)2(l) and fully characterized by high resolution mass spectrometry, TGA analysis, vibrational, UV-Vis and photoluminescence spectroscopy. For intramolecular energy transfer analysis purpose, Ln(NO3)3(ephen)2 [Ln = Eu (III), Gd (IV)] complexes were also synthesized and complexes I and III were theoretically studied. The organic-inorganic tri-ureasil matrix was used as a support for the immobilization of complex II and two hybrid samples were synthesized as a monolith (MtU5Eu-ll) and as a thin film (FtU5Eu-ll), characterized and its photoluminescence properties were compared with those of complex II. The photophysical properties of complex II benefit from the synergy between the excited-states of both ligands that create efficient energy transfer pathways to optimize the Eu~(3+) sensitization contributing to the large emission quantum yield (82 ± 8%), which is one of the highest so far reported for solid lanthanide 3-diketonate complexes. Moreover, although the incorporation of complex II into the hybrid matrix is disadvantageous from the quantum yield point of view, MtU5Eu-ll and FtU5Eu-ll exhibit the highest emission quantum yields reported so far for Eu~(3+)-containing hybrids (63 ± 6% and 48 ± 5%, respectively). Additionally, a significant improvement in the photostability under UV irradiation of the incorporated complex II is observed. The possibility of FtU5Eu-ll to be used as a luminescent solar concentrator was evaluated and an optical conversion efficiency of ~9% as well as an ability to boost up the Si-photovoltaic cell output to 0.5% were verified.
机译:遵循计算实验方法,高发光度的| 3-二酮-(iii)配合物包含2-壬基三氟丙酮酸酯(tta〜-)和5,6-环氧-5,6-二氢-[1,10]菲咯啉(ephen )配体Eu(tta)3ephen(II)通过DFT / TD-DFT计算进行了理论研究,由Eu(tta)3(H2O)2(l)合成,并通过高分辨率质谱,TGA分析,振动进行了全面表征,紫外-可见光谱和光致发光光谱。为了进行分子内能量转移分析,还合成了Ln(NO3)3(ephen)2 [Ln = Eu(III),Gd(IV)]配合物,并对配合物I和III进行了理论研究。将有机-无机三脲基基质用作固定复合物II的载体,并合成了两个混合样品,分别为整体(MtU5Eu-II)和薄膜(FtU5Eu-II),其特征在于其光致发光特性为与复杂的II相比。配合物II的光物理性质得益于两个配体的激发态之间的协同作用,这些协同作用创造了有效的能量转移途径,以优化Eu〜(3+)敏化作用,从而提高了大的发射量子产率(82±8%),这是迄今为止报道的固体镧系3-二酮复合物含量最高的化合物之一。此外,尽管从量子产率的角度来看,将复合物II掺入杂化基质中是不利的,但MtU5Eu-II和FtU5Eu-II表现出迄今为止报道的含Eu〜(3+)杂化物的最高发射量子产率(63 ±6%和48±5%)。另外,观察到掺入的配合物II在UV辐射下的光稳定性显着改善。评估了FtU5Eu-11用作发光太阳能聚光器的可能性,并验证了〜9%的光转换效率以及将Si光伏电池输出提高到0.5%的能力。

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