An S-scheme heterointerface-engineered high-performance ternary NiAl-LDH@TiO2/Ti3C2 MXene photocatalytic system for solar-powered CO2 reduction to produce energy-rich fuels
Author:
Funder
National Research Foundation of Korea
Publisher
Elsevier BV
Subject
Industrial and Manufacturing Engineering,General Chemical Engineering,Environmental Chemistry,General Chemistry
Reference66 articles.
1. Global energy perspectives to 2060–WEC's World Energy Scenarios 2019;Kober;Energy Strategy Rev.,2020
2. The threat to climate change mitigation posed by the abundance of fossil fuels;Johnsson;Climate Policy,2019
3. A review of recent developments in renewable and sustainable energy systems: key challenges and future perspective;Moustakas;Renew. Sust. Energ. Rev.,2020
4. Inside-and-out semiconductor engineering for CO2 photoreduction: from recent advances to new trends;Wang;Small Struct.,2021
5. Recent progress and perspectives in heterogeneous photocatalytic CO2 reduction through a solid–gas mode;Wang;Coord. Chem. Rev.,2021
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