"Spine Surgery" of Perylene Diimides with Covalent B-N Bonds toward Electron-Deficient BN-Embedded Polycyclic Aromatic Hydrocarbons.
Kexiang ZhaoZe-Fan YaoZi-Yuan WangJing-Cai ZengLi DingMiao XiongJie-Yu WangJian PeiPublished in: Journal of the American Chemical Society (2022)
BN-embedded polycyclic aromatic hydrocarbons (PAHs) with unique optoelectronic properties are underdeveloped relative to their carbonaceous counterparts due to the lack of suitable and facile synthetic methods. Moreover, the dearth of electron-deficient BN-embedded PAHs further hinders their application in organic electronics. Here we present the first facile synthesis of novel perylene diimide derivatives (B 2 N 2 -PDIs) featuring n-type B-N covalent bonds. The structures of these compounds are fully confirmed through the detailed characterizations with NMR, MS, and X-ray crystallography. Further investigation shows that the introduction of BN units significantly modifies the photophysical and electronic properties of these B 2 N 2 -PDIs and is further understood with the aid of theoretical calculations. Compared with the parent perylene diimides (PDIs), B 2 N 2 -PDIs exhibit deeper highest occupied molecular orbital energy levels, new absorption peaks in the high-energy region, hypsochromic shift of absorption and emission maxima, and decrement of photoluminescent quantum yields. Single-crystal field-effect transistors based on B 2 N 2 -PDIs showcase an electron mobility up to 0.35 cm 2 V -1 s -1 , demonstrating their potential application in optoelectronic materials.
Keyphrases
- polycyclic aromatic hydrocarbons
- high resolution
- electron microscopy
- molecular dynamics
- mass spectrometry
- solid state
- multiple sclerosis
- solar cells
- magnetic resonance
- ms ms
- density functional theory
- electron transfer
- computed tomography
- risk assessment
- highly efficient
- reduced graphene oxide
- wild type
- human health
- water soluble