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具有浅势能面以超越能隙定律的多共振深红色发射体*

Multi-Resonance Deep-Red Emitters with Shallow Potential-Energy Surfaces to Surpass Energy-Gap Law*.

作者信息

Zhang Yuewei, Zhang Dongdong, Huang Tianyu, Gillett Alexander J, Liu Yang, Hu Deping, Cui Linsong, Bin Zhengyang, Li Guomeng, Wei Jinbei, Duan Lian

机构信息

Key Lab of Organic Optoelectronics and Molecular Engineering of Ministry of Education, Department of Chemistry, Tsinghua University, Beijing, 100084, P. R. China.

Center for Flexible Electronics Technology, Tsinghua University, Beijing, 100084, P. R. China.

出版信息

Angew Chem Int Ed Engl. 2021 Sep 6;60(37):20498-20503. doi: 10.1002/anie.202107848. Epub 2021 Jul 28.

Abstract

Efficient organic emitters in the deep-red region are rare due to the "energy gap law". Herein, multiple boron (B)- and nitrogen (N)-atoms embedded polycyclic heteroaromatics featuring hybridized π-bonding/ non-bonding molecular orbitals are constructed, providing a way to overcome the above luminescent boundary. The introduction of B-phenyl-B and N-phenyl-N structures enhances the electronic coupling of those para-positioned atoms, forming restricted π-bonds on the phenyl-core for delocalized excited states and thus a narrow energy gap. The mutually ortho-positioned B- and N-atoms also induce a multi-resonance effect on the peripheral skeleton for the non-bonding orbitals, creating shallow potential energy surfaces to eliminate the high-frequency vibrational quenching. The corresponding deep-red emitters with peaks at 662 and 692 nm exhibit narrow full-width at half-maximums of 38 nm, high radiative decay rates of ca. 10  s , ≈100 % photo-luminescence quantum yields and record-high maximum external quantum efficiencies of ca. 28 % in a normal planar organic light-emitting diode structure, simultaneously.

摘要

由于“能隙定律”,深红色区域的高效有机发光体十分罕见。在此,构建了多个嵌入硼(B)和氮(N)原子的多环杂芳烃,其具有杂化的π键/非键分子轨道,为克服上述发光界限提供了一种方法。B-苯基-B和N-苯基-N结构的引入增强了那些对位原子的电子耦合,在苯基核上形成受限π键以实现离域激发态,从而产生窄能隙。相互邻位的B和N原子还会在外围骨架上对非键轨道产生多共振效应,形成浅势能面以消除高频振动猝灭。相应的在662和692nm处有峰值的深红色发光体在半高宽为38nm时表现出窄带宽、约10 s的高辐射衰减率、≈100%的光致发光量子产率以及在正常平面有机发光二极管结构中约28%的创纪录高最大外量子效率。

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