Zhi-zheng Li, Bing Wang, Yu‐Ling Wang, Xiao-Long Fu, Shu-Wei Ren, Yan-Ming Liu, Jun-Tao Cao
Regulating the generation, migration, and separation of photogenerated carriers is of great importance for improving the capability of photoelectrodes, which also provides advantages for construction of high-performance photoelectrochemical (PEC) biosensors. Herein, we report an excellent photoelectrode with a synergistic enhancement effect of piezoelectricity and surface plasmon resonance. The photoelectrode, named Au NP /CdS NR /ITO, was fabricated via in situ growth of hexagonal wurtzite cadmium cesium nanorod (CdS NR ) arrays on indium tin oxide (ITO) using a hydrothermal method followed by the photodeposition of gold nanoparticles (Au NP ). Mechanism study reveals that the synergistic enhancement effect on Au NP /CdS NR /ITO greatly enhances the photoelectron conversion efficiency and facilitates the efficient separation of photogenerated carriers, thus manifesting an ultrahigh photocurrent of 1.06 mA. By virtue of target-triggered 3,3′,5,5′-tetramethylbenzidine dication etching technology, a split-type PEC immunosensor was constructed using Au NP /CdS NR /ITO as a proof of concept for highly sensitive and precise detection of carbohydrate antigen 199 with a low detection limit of 5.6 × 10 –5 U mL –1 . The study offers insight into improving photoelectrode property through the regulation of the transport process of photogenerated carriers and also developing high-performance biosensors for more biomolecules.