Advancing Oxide Materials for Thermochemical Production of Solar Fuels
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Elsevier BV
Reference22 articles.
1. Stechel EB and Miller JE. Re-energizing CO2 to fuels with the sun: Issues of efficiency, scale, and economics. Journal of CO2 Utilization 2013; 1:28-36. http://dx.doi.org/10.1016/j.jcou.2013.03.008.
2. Roeb M, Neises, M, Monnerie N, Call F, Simon H, Sattler C, Schmücker M, Pitz-Paal R. Materials-related aspects of thermochemical water and carbon dioxide splitting: A review. Materials 2012, 5:2015-2054.
3. Siegel NP, Miller JE, Ermanoski I, Diver RB, Stechel EB. Factors affecting the efficiency of solar-driven metal oxide thermochemical cycles. Ind. Eng. Chem. Res. 2013; 52:3276-3286. DOI: 10.1021/ie400193q.
4. Kim J, Johnson TA, Miller JE, Stechel EB and Maravelias CT. Fuel production from CO2 using solar-thermal energy: system level analysis. Energy Environ. Sci. 2012; 5:8417-8429. DOI: 10.1039/c2ee21798h.
5. See for example Miller JE, Allendorf MD, Diver RB, Evans LR, Siegel NP, and Stuecker JN. Metal oxide composites and structures for ultra- high temperature solar thermochemical cycles. Journal of Materials Science. 2008; 43:4714 and references therein.
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