Jeong Seonghwa, Park Eunji, Kim Jiyeon, Park Seok Bae, Kim Sung Hoon, Choe Wonyoung, Kim Joonghan, Park Young S
Department of Chemistry, Ulsan National Institute of Science and Technology (UNIST), 50, UNIST-gil, Ulsan, 44919, Republic of Korea.
Department of Chemistry, The Catholic University of Korea, 43, Jibong-ro, Bucheon-si, 14662, Republic of Korea.
Angew Chem Int Ed Engl. 2023 Dec 11;62(50):e202314148. doi: 10.1002/anie.202314148. Epub 2023 Nov 9.
Increasing the chemical diversity of organic semiconductors is essential to develop efficient electronic devices. In particular, the replacement of carbon-carbon (C-C) bonds with isoelectronic boron-nitrogen (B-N) bonds allows precise modulation of the electronic properties of semiconductors without significant structural changes. Although some researchers have reported the preparation of B N anthracene derivatives with two B-N bonds, no compounds with continuous multiple BN units have been prepared yet. Herein, we report the synthesis and characterization of a B N anthracene derivative with a BNBN unit formed by converting the BOBN unit at the zigzag edge. Compared to the all-carbon analogue 2-phenylanthracene, BNBN anthracene exhibits significant variations in the C-C bond length and a larger highest occupied molecular orbital-lowest unoccupied molecular orbital energy gap. The experimentally determined bond lengths and electronic properties of BNBN anthracene are confirmed through theoretical calculations. The BOBN anthracene organic light-emitting diode, used as a blue host, exhibits a low driving voltage. The findings of this study may facilitate the development of larger acenes with multiple BN units and potential applications in organic electronics.
增加有机半导体的化学多样性对于开发高效电子器件至关重要。特别是,用等电子的硼氮(B-N)键取代碳-碳(C-C)键能够在不发生显著结构变化的情况下精确调节半导体的电子性质。尽管一些研究人员已经报道了制备具有两个B-N键的B-N蒽衍生物,但尚未制备出具有连续多个BN单元的化合物。在此,我们报道了一种通过将锯齿边缘的BOBN单元转化而形成具有BNBN单元的B-N蒽衍生物的合成与表征。与全碳类似物2-苯基蒽相比,BNBN蒽在C-C键长度上表现出显著变化,并且具有更大的最高占据分子轨道-最低未占据分子轨道能隙。通过理论计算证实了实验测定的BNBN蒽的键长和电子性质。用作蓝色主体的BOBN蒽有机发光二极管表现出低驱动电压。本研究结果可能有助于开发具有多个BN单元的更大的并苯及其在有机电子学中的潜在应用。