Jinxin Liu, Rui Wu, Hao Cheng, Zhen Yang, Jun Wang, Cheng Xi, Xinyu Hu, Weiwei Zhang, Ning Xu, Chuanping Li
Electrochemiluminescence (ECL) biosensing requires luminophores with high emission efficiency and favorable interfacial reaction kinetics. Herein, a nanoconfined aggregation-induced emission luminophore, TH-UiO-66-NH2, is constructed by coordinating tetracarboxyl-functionalized tetraphenylethylene (TCTPE) within UiO-66-NH2. The resulting TH-UiO-66-NH2 shows an 8.3-fold enhancement in ECL intensity compared with pristine TCTPE. Mechanistic studies reveal that the rigid UiO-66-NH2 not only enhances the interfacial enrichment and electrochemical activation of K2S2O8, but also regulates the aggregation state of TCTPE within a spatially confined coordination environment, thereby suppressing nonradiative relaxation of the AIE luminophore. Taking advantage of the excellent ECL performance of TH-UiO-66-NH2, a signal "on-off-on" biosensing platform is further developed for carcinoembryonic antigen (CEA) detection. The proposed biosensor shows a linear relationship ranging from 10-13 to 10-7 g mL-1 with detection limit down to 2.138 × 10-14 g mL-1. Moreover, a random forest-assisted machine-learning model further improves the detection accuracy, demonstrating the potential of this intelligent ECL system for highly sensitive CEA detection. This work offers a reliable and intelligent analytical strategy for the precision screening and auxiliary diagnosis of cancer markers.