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In situ construction of Cs3Bi2I9/WO3 0D/1D Z-scheme heterojunction photocatalyst for photochemical CO2 reduction under visible light

03.23.25 | Higher Education Press

In the face of growing global energy demands and environmental concerns, developing sustainable technologies for energy conversion and carbon dioxide (CO₂) utilization is crucial. Photocatalytic CO₂ reduction, which leverages solar energy to convert CO₂ into valuable chemicals, stands out as a promising solution. However, existing photocatalysts face challenges such as insufficient light absorption, poor charge separation, and high energy barriers for CO₂ reduction.

Metal halide perovskites (ABX₃) have shown potential in photocatalysis due to their excellent light absorption and charge transport properties. Lead-containing perovskites, however, face issues like degradation and toxicity, prompting researchers to explore lead-free alternatives like bismuth (Bi)-based materials. Cs₃Bi₂I₉, a lead-free halide perovskite, has attracted attention for its high optoelectronic performance but is limited by aggregation and insufficient oxidation ability.

A research team led by Jie Chen from Xi’an Jiaotong University has developed a novel visible-light-driven ( λ > 420 nm) Z-scheme heterojunction photocatalyst composed of 0D Cs₃Bi₂I₉ nanoparticles on 1D WO₃ nanorods for photocatalytic CO₂ reduction. The catalyst was synthesized using an in situ growth approach, where Cs₃Bi₂I₉ nanoparticles were grown on WO₃ nanorods. The research team conducted extensive experiments and characterizations to evaluate the catalyst's performance and understand its underlying mechanisms.

The 0D/1D Cs₃Bi₂I₉/WO₃ Z-scheme heterojunction demonstrated remarkable photocatalytic CO₂ reduction performance. Key findings include:

This work provides valuable insights into the design of efficient heterojunctions for photocatalytic CO₂ reduction. The successful construction of the 0D/1D Z-scheme heterojunction not only enhances the performance of lead-free halide perovskites but also offers a promising strategy for developing advanced photocatalysts. By combining morphological engineering with the Z-scheme heterojunction design, this study paves the way for more efficient and stable photocatalytic materials, contributing to sustainable energy solutions and carbon emission reduction efforts.

Frontiers in Energy

10.1007/s11708-025-0989-1

Experimental study

Not applicable

In situ construction of Cs3Bi2I9/WO3 0D/1D Z-scheme heterojunction photocatalyst for photochemical CO2 reduction under visible light.

5-Mar-2025

Keywords

Article Information

Contact Information

Rong Xie
Higher Education Press
xierong@hep.com.cn

Source

This article is based on a news release from Higher Education Press. BrightSurf curates and republishes science news from research institutions worldwide; the original release is linked below.

How to Cite This Article

APA:
Higher Education Press. (2025, March 23). In situ construction of Cs3Bi2I9/WO3 0D/1D Z-scheme heterojunction photocatalyst for photochemical CO2 reduction under visible light. Brightsurf News. https://www.brightsurf.com/news/LKN07DNL/in-situ-construction-of-cs3bi2i9wo3-0d1d-z-scheme-heterojunction-photocatalyst-for-photochemical-co2-reduction-under-visible-light.html
MLA:
"In situ construction of Cs3Bi2I9/WO3 0D/1D Z-scheme heterojunction photocatalyst for photochemical CO2 reduction under visible light." Brightsurf News, Mar. 23 2025, https://www.brightsurf.com/news/LKN07DNL/in-situ-construction-of-cs3bi2i9wo3-0d1d-z-scheme-heterojunction-photocatalyst-for-photochemical-co2-reduction-under-visible-light.html.