Minsik Gong , Dong Gyu Lee , Gwang Yong Shin , Yun Seop Shin , Donghwan Yun , Yunhye Jeong , Sang Wook Park , Chan Beom Park , Yung Jin Yoon , Sung Yong Bae , Yun-Hi Kim , Jin Young Kim , Tae Kyung Lee , Gi-Hwan Kim
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Herein, we introduced benzalkonium (BA) to synthesize CsPbBr<sub>3</sub> NCs with high quality and explored ligand their optical and electrical properties. The result is that ligand exchange significantly impacts the LHP NCs' characteristics due to overlapped orbitals between the NC surface and <em>π</em>-bonds of the aromatic ring, enhancing charge injection and transport while reducing surface defects. We confirmed the successful anion exchange, which is bound to ammonium ion of BA and the stability of the LHP NCs through various analyses. The modified LHP NCs improved photoluminescence quantum yield and narrower full width at half maximum, indicating improved material purity. This study highlights the potential of ligand exchange to customize LHP NCs’ properties, paving the way for the development of high-efficiency blue LHP LEDs, and other advanced optoelectronic devices. As results, the LHP LEDs using these ligand-exchanged LHP NCs, achieving a notable increase maximum current efficiency (CE<sub>max</sub>,) to 5.88 %, 19.5 cd A<sup>-1</sup> at BA bromide, and 5.50 %, 16.6 cd A<sup>-1</sup> at BA chloride, compared to devices using pristine LHP NCs, which achieved external quantum efficiency (EQE) 2.4 %, CE<sub>max</sub> 7.8 cd A<sup>-1</sup>.</div></div>","PeriodicalId":34303,"journal":{"name":"Applied Surface Science Advances","volume":"26 ","pages":"Article 100698"},"PeriodicalIF":7.5000,"publicationDate":"2025-01-25","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":"{\"title\":\"Improving the charge transport of perovskite nanocrystal light-emitting-diodes through Benzylammonium ligand exchange\",\"authors\":\"Minsik Gong , Dong Gyu Lee , Gwang Yong Shin , Yun Seop Shin , Donghwan Yun , Yunhye Jeong , Sang Wook Park , Chan Beom Park , Yung Jin Yoon , Sung Yong Bae , Yun-Hi Kim , Jin Young Kim , Tae Kyung Lee , Gi-Hwan Kim\",\"doi\":\"10.1016/j.apsadv.2025.100698\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"<div><div>Lead halide perovskite nanocrystals (LHP NCs) have emerged as promising materials for next-generation display area due to their exceptional luminescence efficiency, size-dependent band gap, and shape control. 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引用次数: 0
摘要
卤化铅钙钛矿纳米晶体(LHP NCs)由于其优异的发光效率、尺寸相关的带隙和形状控制而成为下一代显示领域的有前途的材料。NC表面上的配体可以通过配体交换取代,这对LHP发光二极管(led)的性能和性能有重要影响。表面配体中的烷基链对外界刺激的影响取决于其长度。此外,含芳环配体由于其共轭结构而提高了薄膜的导电性。本研究引入苯扎康铵(BA)合成了高质量的CsPbBr3 NCs,并对其配体的光学和电学性质进行了研究。结果表明,配体交换显著影响了LHP纳米粒子的性质,因为纳米粒子表面与芳环π键之间存在轨道重叠,增强了电荷注入和输运,同时减少了表面缺陷。通过各种分析,我们证实了BA与铵盐离子的成功的阴离子交换和LHP NCs的稳定性。改性后的LHP NCs提高了光致发光量子产率,最大半宽处全宽变窄,表明材料纯度提高。这项研究强调了配体交换在定制LHP nc特性方面的潜力,为开发高效蓝色LHP led和其他先进光电器件铺平了道路。结果表明,与使用原始LHP NCs的器件相比,使用这些配体交换LHP NCs的LHP led实现了显著提高的最大电流效率(CEmax),在BA溴化物下达到5.88%,19.5 cd a -1,在BA氯化物下达到5.50%,16.6 cd a -1,其外部量子效率(EQE)为2.4%,CEmax为7.8 cd a -1。
Improving the charge transport of perovskite nanocrystal light-emitting-diodes through Benzylammonium ligand exchange
Lead halide perovskite nanocrystals (LHP NCs) have emerged as promising materials for next-generation display area due to their exceptional luminescence efficiency, size-dependent band gap, and shape control. Ligands on the NC surfaces can be substituted using ligand exchange, which significantly influence the properties and performance of LHP light-emitting diodes (LEDs). The alkyl chain in the surface ligands significantly affect external stimuli depending on their length. Additionally, aromatic ring-containing ligands improve conductivity of the film due to their conjugated structure. Herein, we introduced benzalkonium (BA) to synthesize CsPbBr3 NCs with high quality and explored ligand their optical and electrical properties. The result is that ligand exchange significantly impacts the LHP NCs' characteristics due to overlapped orbitals between the NC surface and π-bonds of the aromatic ring, enhancing charge injection and transport while reducing surface defects. We confirmed the successful anion exchange, which is bound to ammonium ion of BA and the stability of the LHP NCs through various analyses. The modified LHP NCs improved photoluminescence quantum yield and narrower full width at half maximum, indicating improved material purity. This study highlights the potential of ligand exchange to customize LHP NCs’ properties, paving the way for the development of high-efficiency blue LHP LEDs, and other advanced optoelectronic devices. As results, the LHP LEDs using these ligand-exchanged LHP NCs, achieving a notable increase maximum current efficiency (CEmax,) to 5.88 %, 19.5 cd A-1 at BA bromide, and 5.50 %, 16.6 cd A-1 at BA chloride, compared to devices using pristine LHP NCs, which achieved external quantum efficiency (EQE) 2.4 %, CEmax 7.8 cd A-1.