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TiO2/CdZnS/Bi2S3 Multiheterojunction Photoanode with Multisynergistic Oxygen Vacancy-Induced Charge Storage
Jinlian Zhang1, Yajin Shi1, Xianze Meng2
1Department of Chemistry and Key Laboratory for Preparation and Application of Ordered Structural Materials of Guangdong Province, Shantou University, Shantou 515063, China.
Abstract:
The existing photoelectrochemical cathodic protection (PECCP) technology relies on light-trapped photogenerated electrons for the corrosion protection of metals, but it is difficult to protect them for a long time under dark conditions. To overcome this limitation, a TiO2/CdZnS/Bi2S3 multilayer heterojunction photoanode was constructed. This photoanode achieved highly efficient separation of photogenerated charges and electrons with a photocurrent density of 2.21 mA/cm2 by synergistically modulating the energy band gradient, utilizing the energy storage mechanism realized by the oxidative reduction valence change of Bi5+/Bi3+, and engineering the oxygen vacancy (OV) defect state. Meanwhile, the valence state jump of the photogenerated holes (h+) oxidizing Bi3+ to Bi5+ accelerates the depletion of the photogenerated holes in the presence of light. In the dark, Bi5+ accepts electrons (e-) to be reduced to Bi3+, releasing the stored electrons. Owing to this mechanism, the heterojunction system significantly prolonged the dark protection time to 9.5 h after 1 h of light irradiation. A built-in electric field at the heterojunction interface was realized to drive the directional migration of photoelectrons to the 304 stainless steel substrate (304 SS), providing a new strategy for corrosion protection of metals with full-cycle electronic self-regulation in marine environments.
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