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Published on: March 11, 2014
Ru(phen)32+-Sensitized GaN-Gated Organic Photoelectrochemical Transistor for Sensitive and Selective Detection of
Xuran Tian1, Zhiqin Zhang2, Yulan Zeng1
1Ministry of Education Key Laboratory for Analytical Science of Food Safety and Biology, Fujian Provincial Key Laboratory of Analysis and Detection for Food Safety, College of Chemistry, Fuzhou University, Fuzhou, Fujian 350116, China.
Abstract:
Benefiting from the well-matched energy levels between Ru(phen)32+ and GaN, and the ability of Ru(phen)32+ to intercalate into the grooves of double-stranded DNA (dsDNA), an innovative organic photoelectrochemical transistor (OPECT)-based biosensor has been developed for the detection of human papillomavirus 16 (HPV-16), which was chosen as a model target. Trigger DNA immobilized on the gold-coated GaN surface can initiate a hybridization chain reaction (HCR), generating long-stranded dsDNA, which can be used to load a large amount of Ru(phen)32+. The produced dsDNA can also serve as a π-π-stacked hole-transporting nanowire, enhancing the efficiency of the hole transport between GaN and Ru(phen)32+. Under light irradiation, efficient energy level matching between GaN and Ru(phen)32+ promotes the transport efficiency of photogenerated carriers, leading to a significant increase in the drain-source current (IDS). In the presence of HPV-16, the CRISPR/Cas12a system is activated and the immobilized trigger DNA is cleaved, thereby preventing the formation of dsDNA through HCR. As a result, a smaller amount of Ru(phen)32+ is immobilized on the electrode surface, leading to a reduction in the output signal. The signal change exhibits a linear relationship with the target concentration in the range of 10.00 fM to 10.00 nM, achieving a detection limit as low as 2.88 fM, which is much better than that of the corresponding photoelectrochemical (PEC) biosensor. The system demonstrates excellent sensitivity and specificity in clinical sample analysis.

