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Pulsed Laser Engineering of Sulfur Defects in ZnIn2S4 Boosts CO2 Reduction

Bioengineer by Bioengineer
July 29, 2026
in Technology
Reading Time: 3 mins read
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Pulsed Laser Engineering of Sulfur Defects in ZnIn2S4 Boosts CO2 Reduction
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Scientists are racing to mimic photosynthesis by turning carbon dioxide (CO₂) into fuels and chemicals using sunlight. A major bottleneck in photocatalysis is finding materials that are both efficient and stable at converting CO₂ while resisting rapid charge-carrier losses inside the catalyst. Now, a collaborative team from the University of Science and Technology of China and partner institutions reports a defect-engineering strategy that dramatically boosts performance in a leading photocatalyst family.

The work focuses on ZnIn₂S₄ nanosheets, a semiconductor that can drive CO₂ reduction under light but typically suffers from limited absorption and fast recombination of photogenerated electrons and holes. Instead of relying on conventional defect-creation methods that may require harsh reagents or high-temperature processing, the researchers used pulsed laser ablation in liquid (PLAL). This approach is performed in water at room temperature and is designed for precise, tunable modification of the material’s defect landscape.

In their method, high-energy laser pulses strike a suspension of ZnIn₂S₄ nanosheets. The intense, localized energy ejects sulfur atoms from the crystal lattice, generating sulfur vacancies while preserving the overall nanosheet integrity. Crucially, the team demonstrated that irradiation time controls the defect density, allowing systematic tuning rather than one-size-fits-all defect introduction.

Advanced spectroscopy and microscopy confirmed that the engineered vacancies introduce mid-gap electronic states, extending light absorption into the visible range. At the same time, the vacancies act as electron traps, which suppress electron–hole recombination—one of the dominant causes of performance loss in photocatalytic CO₂ reduction.

The researchers describe sulfur vacancies as a “triple function”: enhanced light harvesting, improved charge separation and carrier lifetime, and creation of highly active adsorption sites that can capture and activate inert CO₂ molecules. This combination targets multiple steps of the reaction rather than optimizing only one.

With the optimal PLAL treatment (1.5 hours, labeled ZIS-D₁.₅h), the catalyst delivered a CO production rate of 365 μmol g⁻¹ h⁻¹ with high selectivity (89%). The defective structure also retained strong activity across multiple reaction cycles, indicating that the laser-created defects are stable enough for repeated use.

To verify the reaction pathway, the team performed isotope labeling using ¹³CO₂. The isotopic experiments showed that the produced CO originates from the supplied CO₂ feed rather than from contamination or background sources. They further supported mechanistic claims with theoretical calculations showing that sulfur vacancies lower the energy barrier of the key rate-limiting step, the formation of the *COOH intermediate from adsorbed CO₂.

Overall, the study positions PLAL as a green, scalable platform for precision defect engineering in next-generation photocatalysts. The authors suggest the same principles could be extended to other materials to help build more effective artificial photosynthesis systems.

Subject of Research: Photocatalytic CO₂ reduction using sulfur-defect engineered ZnIn₂S₄ nanosheets via pulsed laser ablation in liquids (PLAL)
Article Title: Engineering of sulfur defects in ZnIn₂S₄ via pulsed laser ablation for enhanced photocatalytic CO₂ reduction performance
News Publication Date: 6-May-2026
Web References: http://dx.doi.org/10.26599/NR.2026.94908531
References: Nano Research (SciOpen/Tsinghua University Press) — DOI: 10.26599/NR.2026.94908531
Image Credits: Nano Research, Tsinghua University Press

Keywords

photocataysis; CO₂-to-CO; ZnIn₂S₄; sulfur vacancies; PLAL; defect engineering; charge separation; visible-light absorption; isotope labeling

Tags: advanced microscopy and spectroscopy in defect analysisboosting CO2 reduction withenhancement of photocatalytic efficiency via defect tuningimproving light absorption in photocatalytic systemslaser-induced defect engineering in 2D materialsPhotocatalyst defect engineeringpulsed laser ablation in liquid (PLAL)room-temperature defect modification techniquesstability and charge separation in photocatalystssulfur vacancy creation in semiconductor materialssustainable methods for catalyst modificationZnIn2S4 nanosheets for CO2 reduction

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