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Updated: Jan 18, 2026

A Novel Technique for Generating and Observing Chemiluminescence in a Biological Setting
Published on: March 9, 2017
Unlocking High-Performance Electrochemiluminescence in Supramolecular Coordination Frameworks via π-Bridge
Ziqi Lian1, Xinxin Liu2, Yu Wang1
1School of Chemistry and Chemical Engineering, Key Lab of Fuel Cell Technology of Guangdong Province, South China University of Technology, Guangzhou, 510641, China.
Abstract:
Aggregation-induced electrochemiluminescence (AIECL) is a promising strategy for enhancing electrochemiluminescence (ECL) efficiency by minimizing energy loss of excited-state ECL emitters. However, rational design of high-efficiency AIECL emitters is hindered by limited mechanistic understanding and an unclear structure-performance relationship. To address this, four supramolecular coordination frameworks (SCFs) with varying π-bridge structures are synthesized using pyridine-functionalized tetraphenylethene (TPE) as the ligand and Pt(II) as the coordination center. Electrochemical and electron paramagnetic resonance analyses revealed that the TPE-SCFs generated excited-state species and singlet oxygen (1O2) and collectively enhanced cathodic ECL. Meanwhile, π-bridge engineering activated electron distribution and delocalization of the highest occupied molecular orbital within TPE, narrowing the energy gap by 0.82 eV, facilitating charge transfer and ultimately enhancing ECL, as evidenced by density functional theory calculation. Particularly, aggregation of the TPE-SCFs promotes self-catalytic heterocleavage of K2S2O8, boosting SO4 ●- generation and accelerating the formation of excited-state TPE-SCFs and 1O2, leading to strong ECL emission. This study unveils a dual enhancement mechanism: π-bridge-mediated intramolecular charge transfer process synergizing with aggregation-driven self-catalytic radical amplification, offering valuable insights for rational design of high-performance AIECL materials suitable for diverse applications.

