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基于激发复合物的互补型白光发光二极管用萘酰亚胺衍生物功能化N,N′-联咔唑的合成与性能研究
Synthesis and properties of naphthalimide derivative functionalized _N,N_′-bicarbazole for complementary white light-emitting diodes with exciplex
| 作者 | Xiaoling Xie |
| 期刊 | Journal of Materials Science: Materials in Electronics |
| 出版日期 | 2025年1月 |
| 卷/期 | 第 36.0 卷 |
| 技术分类 | 电动汽车驱动 |
| 技术标签 | GaN器件 |
| 相关度评分 | ★★★★ 4.0 / 5.0 |
| 关键词 | D-A结构 十字型蓝色发光材料 1 8-萘酰亚胺 激基复合物 高色品质白光 |
语言:
中文摘要
1,8-萘酰亚胺(NI)衍生物经过定制化修饰,可作为有机发光器件(OLEDs)中的发光层,以实现全彩发光,并提高器件的寿命和发光稳定性。本研究设计并合成了具有给体-受体(D-A)结构的多功能十字型蓝色发光材料BCz-NI,该材料以N-丁基-1,8-萘酰亚胺为受体单元,N,N′-联咔唑为供体基团。发射体BCz-NI表现出局域激发态与电荷转移态的杂化特性,能够充分利用所形成的激子并减少能量损失,这归因于十字型核心结构提供了有效的空间位阻,促进了能量传递。以BCz-NI作为蓝光材料制备的非掺杂OLED,通过蓝光材料与电子传输层之间形成的激发复合物(exciplex)相结合,实现了暖白光发射,其国际照明委员会色坐标为(0.41, 0.37)。本研究为通过形成激发复合物实现互补型白光OLED提供了理论依据。
English Abstract
1,8-naphthalimide (NI) derivatives are custom-modified specifically as emitting layers in organic light-emitting devices (OLEDs) to realize full-color emission and improve the lifetime and luminous stability. In this work, a multifunctional cruciate-type blue emitter BCz-NI based on N-buthyl-1,8-naphthalimide linked with the N,N ′-bicarbazole donor group was designed and synthesized with D-A structured. The emitter BCz-NI shows hybridized local and charge-transfer state characteristics to make full use of the formed excitons and reduce losing energy, which is attributed to the cruciate-type core providing efficient steric hindrance to promotes energy transfer. The non-doped OLEDs based on BCz-NI as a blue light material to achieve warm white light emission with commission internationale de leclairage coordinates of (0.41, 0.37) by combining the blue light material and the exciplex generated with the electron transport layer. This research would provide theoretical basis for complementary white light OLED by forming exciplex.
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SunView 深度解读
该有机发光二极管(OLED)材料研究虽聚焦显示领域,但其激子能量管理和D-A结构设计理念对阳光电源GaN功率器件具有启发意义。文中通过空间位阻促进能量转移、减少能量损耗的机制,可借鉴于SG系列逆变器和ST储能变流器中GaN器件的热管理优化。特别是激基复合物(exciplex)形成机制,为EV充电桩的宽禁带半导体界面优化提供理论参考,有助提升功率密度和转换效率。建议关注分子级能量调控策略在功率电子散热与载流子传输中的应用潜力。