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有机共轭分子超分子掺杂中的光激发动力学与能量工程

Photoexcitation dynamics and energy engineering in supramolecular doping of organic conjugated molecules.

作者信息

An Xiang, Wei Chuanxin, Bai Lubing, Zhou Jun, Wang Le, Han Yamin, Sun Lili, Lin Jinyi, Liu Heyuan, Li Jiewei, Xu Man, Ling Haifeng, Xie Linghai, Huang Wei

机构信息

Key Laboratory of Flexible Electronics (KLOFE) & Institute of Advanced Materials (IAM), Nanjing Tech University (NanjingTech), 30 South Puzhu Road, Nanjing, 211816, China.

State Key Laboratory of Organic Electronics and Information Displays & Institute of Advanced Materials (IAM), Nanjing University of Posts & Telecommunications, 9 Wenyuan Road, Nanjing, 210023, China.

出版信息

Light Sci Appl. 2023 Jan 31;12(1):30. doi: 10.1038/s41377-022-01062-6.

Abstract

Doping and blending strategies are crucial means to precisely control the excited states and energy level in conjugated molecular systems. However, effective models and platforms are rarely proposed to systematically explore the effects of the formation of trapped doped centers on heterogeneous structures, energy level and ultrafast photophysical process. Herein, for deeply understanding the impact of molecular doping in film energy levels and photoexcitation dynamics, we set a supramolecular N-B coordination composed by the conjugated molecules of pyridine functionalized diarylfluorene (host material), named as ODPF-Phpy and ODPF-(Phpy), and the molecule of tris(perfluorophenyl)borane (BCF) (guest material). The generation of the molecular-level coordination bond increased the binding energy of N atoms and tuned the band-gap, leading to a new fluorescent emission center with longer excitation wavelength and emission wavelength. The intermolecular Förster resonance energy transfer (FRET) in blending films make it present inconsistent fluorescent behaviors compared to that in solution. The charge transfer (CT) state of N-B coordinated compounds and the changed dielectric constant of blending films resulted in a large PL spectra red-shift with the increased dopant ratio, causing a wide-tunable fluorescent color. The excited state behaviors of two compounds in blending system was further investigated by the transient absorption (TA) spectroscopy. Finally, we found supramolecular coordination blending can effectively improve the films' photoluminescence quantum yield (PLQY) and conductivity. We believe this exploration in the internal coordination mechanisms would deepen the insights about doped semiconductors and is helpful in developing novel high-efficient fluorescent systems.

摘要

掺杂和共混策略是精确控制共轭分子体系中激发态和能级的关键手段。然而,很少有有效的模型和平台被提出来系统地探究俘获掺杂中心的形成对异质结构、能级和超快光物理过程的影响。在此,为了深入理解分子掺杂对薄膜能级和光激发动力学的影响,我们构建了一种超分子N-B配位体系,该体系由吡啶功能化二芳基芴的共轭分子(主体材料),命名为ODPF-Phpy和ODPF-(Phpy),以及三(全氟苯基)硼烷(BCF)分子(客体材料)组成。分子级配位键的生成增加了N原子的结合能并调节了带隙,导致了一个具有更长激发波长和发射波长的新荧光发射中心。共混薄膜中的分子间Förster共振能量转移(FRET)使其呈现出与溶液中不一致的荧光行为。N-B配位化合物的电荷转移(CT)态和共混薄膜介电常数的变化导致随着掺杂剂比例的增加PL光谱发生较大红移,产生了宽可调谐的荧光颜色。通过瞬态吸收(TA)光谱进一步研究了两种化合物在共混体系中的激发态行为。最后,我们发现超分子配位共混可以有效地提高薄膜的光致发光量子产率(PLQY)和电导率。我们相信这种对内部配位机制的探索将加深对掺杂半导体的理解,并有助于开发新型高效荧光体系。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b9a3/9889348/e94bf7e325ac/41377_2022_1062_Sch1_HTML.jpg

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