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Thienylpyridine-based cyclometallated iridium(III) complexes and their use in solid state light-emitting electrochemical cells

机译:基于噻吩基吡啶的环金属化铱(III)配合物及其在固态发光电化学电池中的应用

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摘要

The synthesis and characterization of four iridium(III) complexes [Ir(thpy)2(N^N)][PF6] where Hthpy = 2-(2′-thienyl)pyridine and N^N are 6-phenyl-2,2′-bipyridine (1), 4,4′-di-tbutyl-2,2′-bipyridine (2), 4,4′-di-tbutyl-6-phenyl-2,2′-bipyridine (3) or 4,4′-dimethylthio-2,2′-bipyridine (4) are described. The single crystal structures of ligand 4 and the complexes containing the [Ir(thpy)2(1)]+ and [Ir(thpy)2(4)]+ cations have been determined. In [Ir(thpy)2(1)]+, the pendant phenyl ring engages in an intra-cation π-stacking interaction with one of the thienyl rings in the solid state, and undergoes hindered rotation on the NMR timescale in [Ir(thpy)2(1)]+ and [Ir(thpy)2(3)]+. The solution spectra of [Ir(thpy)2(1)][PF6] and [Ir(thpy)2(4)][PF6] show emission maxima around 640 nm and are significantly red-shifted compared with [Ir(thpy)2(2)][PF6] and [Ir(thpy)2(3)][PF6] which have structured emission bands with maxima around 550 and 590 nm. In thin films, the emission spectra of the four complexes are similar with emission peaks around 550 and 590 nm and a shoulder around 640 nm that are reminiscent of the features observed in solution. In solution, quantum yields are low, but in thin films, values range from 29% for [Ir(thpy)2(1)][PF6] to 51% for [Ir(thpy)2(4)][PF6]. Density functional theory calculations rationalize the structured emission observed for the four complexes in terms of the 3LC nature predicted for the lowest-energy triplet states that mainly involve the cyclometallated [thpy]− ligands. Support for this theoretical result comes from the observed features of the low temperature (in frozen MeCN) photoluminescence spectra of the complexes. Photoluminescence and electroluminescence spectra of the complexes in a light-emitting electrochemical cell (LEC) device configuration have been investigated. The electroluminescence spectra are similar for all [Ir(thpy)2(N^N)][PF6] complexes with emission maxima at ≈600 nm, but device performances are relatively poor probably due to the poor charge-transporting properties of the complexes.
机译:四种铱(III)配合物[Ir(thpy)2(N ^ N)] [PF6]的合成和表征,其中Hthpy = 2-(2'-噻吩基)吡啶,N ^ N为6-苯基-2,2 '-联吡啶(1),4,4'-二叔丁基-2,2'-联吡啶(2),4,4'-二叔丁基-6-苯基-2,2'-联吡啶(3)或4描述了,4′-二甲硫基-2,2′-联吡啶(4)。已经确定了配体4的单晶结构以及含有[Ir(thpy)2(1)] +和[Ir(thpy)2(4)] +阳离子的配合物。在[Ir(thpy)2(1)] +中,侧苯环与固态的一个噻吩基环之一发生阳离子内π堆积相互作用,并在[Ir( thpy)2(1)] +和[Ir(thpy)2(3)] +。 [Ir(thpy)2(1)] [PF6]和[Ir(thpy)2(4)] [PF6]的溶液光谱显示发射最大值约为640 nm,并且与[Ir(thpy)]相比有明显的红移。 2(2)] [PF6]和[Ir(thpy)2(3)] [PF6]具有最大在550和590 nm附近的结构化发射带。在薄膜中,四种络合物的发射光谱相似,其发射峰在550和590 nm附近,而肩峰在640 nm附近,让人联想到溶液中观察到的特征。在溶液中,量子产率很低,但在薄膜中,值范围从[Ir(thpy)2(1)] [PF6]的29%到[Ir(thpy)2(4)] [PF6]的51%。密度泛函理论计算根据预测的最低能量三重态(主要涉及环金属化的[py]]-配体的3LC性质,合理化了针对四种配合物观察到的结构发射。该理论结果的支持来自于配合物的低温(在冻结的MeCN中)光致发光光谱的观察特征。研究了发光电化学电池(LEC)器件配置中配合物的光致发光和电致发光光谱。所有[Ir(thpy)2(N ^ N)] [PF6]配合物的电致发光光谱都相似,发射最大值在≈600nm,但是器件性能相对较差,这可能是由于配合物的电荷传输性能差所致。

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