The inherent properties of TiO, including a wide band gap and restricted spectral response range, hinder its commercial application and its ability to harness only 2-3% of solar energy. To address these challenges and unlock TiO's full potential in photocatalysis, C- and CdS-co-modified nano-titanium dioxide has been adopted in this work to reduce the band gap, extend the absorption wavelength, and control photogenerated carrier recombination, thereby enhancing TiO's light-energy-harnessing capabilities and hydrogen evolution capacity. Using the sol-gel method, we successfully synthesized CdS-C/TiO composite nanomaterials, harnessing the unique strengths of CdS and C. The results showed a remarkable average yield of 34.025 μmol/h for TiO co-modified with CdS and C, representing a substantial 17-fold increase compared to pure CdS. Simultaneously, the average hydrogen generation of C-modified CdS surged to 5.648 μmol/h, a notable two-fold improvement over pure CdS. This work opens up a new avenue for the substantial improvement of both the photocatalytic degradation efficiency and hydrogen evolution capacity, offering promise of a brighter future in photocatalysis research.
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http://www.ncbi.nlm.nih.gov/pmc/articles/PMC10934443 | PMC |
http://dx.doi.org/10.3390/ma17051206 | DOI Listing |
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