Efficient Deep‐Blue Multiple‐Resonance Emitters Based on Azepine‐Decorated ν‐DABNA for CIEy below 0.06

Author:

Mamada Masashi1ORCID,Aoyama Akio2,Uchida Ryota1,Ochi Junki1,Oda Susumu3ORCID,Kondo Yasuhiro4,Kondo Masakazu5,Hatakeyama Takuji1ORCID

Affiliation:

1. Department of Chemistry, Graduate School of Science Kyoto University Sakyo‐ku Kyoto 606‐8502 Japan

2. Department of Chemistry, Graduate School of Science and Technology Kwansei Gakuin University 2‐1 Gakuen Sanda Hyogo 669‐1337 Japan

3. Department of Applied Chemistry, Graduate School of Science and Engineering Toyo University 2100 Kujirai Kawagoe Saitama 350‐8585 Japan

4. SK JNC Japan Co., Ltd. 5‐1 Goi Kaigan Ichihara Chiba 290‐8551 Japan

5. JNC Co., Ltd. 5‐1 Goi Kaigan Ichihara Chiba 290‐8551 Japan

Abstract

AbstractUltrapure deep‐blue emitters are in high demand for organic light‐emitting diodes (OLEDs). Although color coordinates serve as straightforward parameters for assessing color purity, precise control over the maximum wavelength and full‐width at half‐maximum is necessary to optimize OLED performance, including luminance efficiency and luminous efficacy. Multiple‐resonance (MR) emitters are promising candidates for achieving ideal luminescence properties; consequently, a wide variety of MR frameworks have been developed. However, most of these emitters experience a wavelength displacement from the ideal color, which limits their practical applicability. Therefore, a molecular design that is compatible with MR emitters for modulating their energy levels and color output is particularly valuable. Here, it is demonstrated that the azepine donor unit induces an appropriate blue‐shift in the emission maximum while maintaining efficient MR characteristics, including high photoluminescence quantum yield, narrow emission, and a fast reverse intersystem crossing rate. OLEDs using newly developed MR emitters based on the ν‐DABNA framework simultaneously exhibit a high quantum efficiency of ≈30%, luminous efficacy of ≈20 lm W−1, exceptional color purity with Commission Internationale de l’Éclairage coordinates as low as (0.14, 0.06), and notably high operational stability. These results demonstrate unprecedentedly high levels compared with those observed in previously reported deep‐blue emitters.

Publisher

Wiley

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