Crystallization-Induced Phosphorescence of Pure Organic Luminogens at Room Temperature

Wang Zhang Yuan(Hong Kong University of Science and Technology), Xiao Shen(Hong Kong University of Science and Technology), Hui Zhao(Hong Kong University of Science and Technology), Jacky W. Y. Lam(Hong Kong University of Science and Technology), Li Tang(Hong Kong University of Science and Technology), Ping Lü(Hong Kong University of Science and Technology), Chunlei Wang(Hong Kong University of Science and Technology), Liu Yang(Hong Kong University of Science and Technology), Zhiming Wang(Hong Kong University of Science and Technology), Qiang Zheng(Hong Kong University of Science and Technology), Jing Sun(Hong Kong University of Science and Technology), Yuguang Ma(Hong Kong University of Science and Technology), Ben Zhong Tang(Hong Kong University of Science and Technology)
The Journal of Physical Chemistry C
March 10, 2010
Cited by 977

Abstract

Phosphorescence has rarely been observed in pure organic chromophore systems at room temperature. We herein report efficient phosphorescence from the crystals of benzophenone and its derivatives with a general formula of (X-C6H4)2C═O (X = F, Cl, Br) as well as methyl 4-bromobenzoate and 4,4′-dibromobiphenyl under ambient conditions. These luminogens are all nonemissive when they are dissolved in good solvents, adsorbed on TLC plates, and doped into polymer films, because active intramolecular motions such as rotations and vibrations under these conditions effectively annihilate their triplet excitons via nonradiative relaxation channels. In the crystalline state, the intramolecular motions are restricted by the crystal lattices and intermolecular interactions, particularly C−H···O, N−H···O, C−H···X (X = F, Cl, Br), C−Br···Br−C, and C−H···π hydrogen bonding. The physical constraints and multiple intermolecular interactions collectively lock the conformations of the luminogen molecules. This structural rigidification effect makes the luminogens highly phosphorescent in the crystalline state at room temperature.


Related Papers

No related papers found

Powered by citation graph analysis