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Published on: July 25, 2025
Green Synthesis of Z-Scheme SnO2/CdS Heterostructures: Density Functional Theory Calculation and Photocatalytic CO2
Pramod Madhukar Gawal1, Animes Kumar Golder1
1Department of Chemical Engineering, Indian Institute of Technology Guwahati, Guwahati, Assam 781039, India.
Abstract:
Converting CO2 into valuable fuels through photocatalysis offers a sustainable strategy to address the energy shortage and decrease greenhouse gas emissions. This work studied bio-based Z-scheme SnO2/CdS heterojunction photocatalysts (5.7 nm, 120.6 m2 g-1; conduction band: -0.96 V) synthesized using analytes found in Aegle marmelos via microwave irradiation for efficient CO2 reduction into value-added chemicals. The heterojunction demonstrates a notably higher CO2 adsorption ability (0.4 mmol g-1) and photocurrent response (0.74 μA cm-2) than both CdS QDs(bio) and SnO2(bio). It also improves charge carrier dynamics, as evidenced by 60 and 56.1% reductions in PL intensity and 48.9 and 59.2% increases in charge carrier lifetime, respectively. The Fermi level difference between CdS (-4.51 eV) and SnO2 (-5.52 eV) creates an internal electric field that promotes charge separation and transport, inhibits recombination, and protects CdS QDs(bio) from photocorrosion (SO42-). Density functional theory analysis reveals that SnO2 incorporation into CdS reduces the bandgap (2.38 → 2.15 eV), introduces additional electronic states near the Fermi level (EF), and shifts the conduction band density of states closer to the EF compared to CdS QDs, indicating a higher density of active states that enhance interfacial charge transfer. The optimized 0.50SnO2/CdS QDs(bio) heterostructure exhibits outstanding photocatalytic activity for CO2 reduction, achieving methanol and hydrogen production rates of 675.9/139.5 μmol g-1 h-1 (apparent quantum yields of 3.51 and 0.24%) while maintaining its structural and morphological stability.

