Narrowband Hydrocarbon Emitters Enabled by Stereo‐Locked Through‐Space Interactions
Qingyang Xu, Jingli Lou, Kangwei Luo, Jiajie Wu, Qinghui Jin, Guoqing Zhang, Jing Zhi Sun, Zhiming Wang, Jianyu Zhang, Ben Zhong Tang, Haoke ZhangABSTRACT
High‐purity emitters with a narrowband emission are a critical requirement for next‐generation displays and lighting, yet it remains a formidable challenge for purely organic materials, particularly in the pure‐violet region. Herein, a general molecular design strategy based on the “stereo‐lock” concept, represented by diarylbenzene derivatives solely from carbon and hydrogen, is presented. This strategy effectively suppresses intramolecular C─C/C─H stretching and attenuates vibronic coupling via intramolecular through‐space interactions between two aryl groups, yielding a record full width at half maximum (FWHM) of merely 6 nm at 80 K from a single molecule. In the solid state, their aggregates with intermolecular positive exciton coupling induce quantum interference that selectively quenches the v 0‐0 transition, resulting in an FWHM of 17 nm at room temperature. Leveraging this synergy, diarylbenzene‐based OLED devices with pure‐violet electroluminescence with an 18 nm FWHM and a CIE coordinate of (0.165, 0.022) are achieved. This stereo‐lock architecture circumvents the fundamental limitation of vibronic coupling in pure hydrocarbons and addresses the absence of high‐color‐purity violet OLEDs, establishing a powerful and versatile design paradigm for narrowband emitters.