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Counterion Engineering Toward High-Performance and Ph-Neutral Polyoxometalates-Based Hole-Transporting Materials for Efficient Organic Optoelectronic Devices.

ACS Nano(2024)

Beijing Univ Chem Technol | Qingdao Univ Sci & Technol | Hubei Univ

Cited 1|Views22
Abstract
Although protonated polyoxometalates (POMs) are promising hole-transporting layer (HTL) materials for optoelectronic devices owing to their excellent hole collection/injection property, pH neutrality, and noncorrosiveness, POMs are seldom used as high-performance HTL materials. Herein, we designed and synthesized a series of mixed-additive POMs with pH-neutral counterions (NH4+, K+, and Na+) as HTL materials. X-ray photoelectron spectroscopy and single-crystal X-ray analyses indicated that the use of the lacunary heteropolyanion [P2W15O56]12- as an intermediate ensured successful incorporation of the counterions into the mixed-addenda POMs without causing deterioration of the POM frameworks. The hole-transporting layer performance of POM-NH4, which was characterized by a high work function and good conductivity and could be prepared using a low-cost method surpassed those of its protonated counterpart POM-4 and many classic HTL materials. An organic solar cell (OSC) modified with POM-NH4 delivered a power conversion efficiency of 18.0%, which was the highest photovoltaic efficiency achieved by POM-based OSCs to date. Moreover, an HTL material based on POM-NH4 reduced the turn-on voltage of an organic light-emitting diode from 4.2 to 3.2 V. The results of this study suggest that POMs are promising alternatives to the classic HTL materials owing to their excellent hole-collection ability, low costs, neutral nature, and high-chemical stability.
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Key words
organic optoelectronicdevice,hole-transporting material,polyoxometalate,noncorrosive nature,photovoltaicefficiency
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要点】:本研究通过引入pH中性反离子(NH4+、K+和Na+)设计合成了高性能的pH中性聚氧金属酸盐(POMs)空穴传输材料,显著提高了有机光电设备的性能。

方法】:利用X射线光电子能谱和单晶X射线分析,确保了反离子的成功引入,同时保持了POM框架的稳定性。

实验】:通过使用[P2W15O56]12-作为中间体,合成了含有NH4+的POM材料,该材料在空穴传输层性能上超过了质子化POM-4和许多传统空穴传输材料,并在有机太阳能电池中实现了18.0%的转换效率,同时降低了有机发光二极管的开启电压,实验数据集未在文中明确提及。