Chrome Extension
WeChat Mini Program
Use on ChatGLM

In-Situ Hydrothermal Synthesis of SnS2/SnO2/rGO Nanocomposites with Enhanced Photogenerated Electron Transfer for Photoreduction of CO2 to CH4

CATALYSIS LETTERS(2022)

Cited 3|Views3
No score
Abstract
As an extremely promising technology about decarburization, the reduction of CO2 driven by sunlight shows a glamourous prospect, so it is valuable to design a sort of photocatalyst with excellent performance i.e., low cost, high photocatalytic activity and high product selectivity, which is the key factor to promote the further popularity of this technology in industry. In this work, the SnS2/SnO2/rGO ternary nanocomposites were successfully designed and fabricate through a simple one pot in-situ hydrothermal synthesis. It is worth noting that the XRD, SEM and Raman results indicate that the molar of SnS2 to SnO2 could be increased with the content of L-cysteine, and it is proved that the ternary material is simply adjustable. The separation and transference of photogenerated electrons and holes could be accelerated due to the reduced graphite oxide with outstanding electrical conductivity. At the same time, under the condition of inputting appropriate sulfur source precursors, appropriate pore size and pore volume structure characteristics are obtained, which further contributes the adsorption capacity of CO2. Moreover, the proper position of the conduction band improves the selectivity for photoreduction of CO2 to CH4 of SnS2/SnO2/rGO composite. Hence, under visible-near infrared light, the highest CH4 productivity of SnS2/SnO2/rGO ternary composite is 5.52 mu mol g(-1) h(-1). This work provides some references for the field of photocatalytic decarburization. [GRAPHICS] .
More
Translated text
Key words
Photocatalysis, rGO, Tin-based compound, CO2 reduction, Electron transfer
AI Read Science
Must-Reading Tree
Example
Generate MRT to find the research sequence of this paper
Chat Paper
Summary is being generated by the instructions you defined