Eetu Hakkarainen, Corentin Montagne, Hao-Cheng Lin, Chen-Yu Lin, Khai-Nghi Truong, Po-Yu Chen, Anton Nechaev, Fabien B L Cougnon, Igor O Koshevoy, Toni Eskelinen, Hao-Wu Lin, Pi-Tai Chou, Andrey Belyaev
Overcoming the long-standing trade-off between efficiency and radiative rate in metal-free phosphorescence remains a central challenge in molecular photophysics and is pivotal for the next-generation optoelectronic technologies. Here, we demonstrate that tuning the strength of anion-π+ interactions in pyridinium-based contact ion pairs (CIPs) enables exceptionally fast room-temperature phosphorescence (RTP) spanning 540 to 605 nm and, with radiative rates reaching 5.2×105 s-1, places this crystalline material among the fastest known organic phosphors. By systematically tuning electron deficiency, steric confinement, and CIP organization through mono- and dicarboxyester-functionalized pyridinium iodides, we achieved unusually short and highly polarized I--π+ tunable contacts that approach 3.50 Å. Structural analysis reveals not only tightly bound, sandwich-like, and columnar-organized ion pairs but also unexpected dynamic behavior, including reversible, thermally activated anion drift in the solid state. Collectively, these solid state features engender strongly coupled iodide → π+ charge-transfer states with enhanced spin-orbit coupling, thereby promoting ultrafast intersystem crossing. Spectroscopic and theoretical studies identify an intensity-borrowing mechanism within the charge-transfer manifold that underlies the accelerated phosphorescence and/or thermally stimulated delayed phosphorescence. The resulting materials show promising X-ray scintillation performance. Our work establishes anion-π+ engineering as a general and previously underexploited strategy for achieving high-rate, metal-free phosphorescence.