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Considerations in the Design of Materials for Solar-Driven Fuel Production Using Metal-Oxide Thermochemical Cycles

机译:使用金属氧化物热化学循环生产太阳能驱动燃料的材料设计中的注意事项

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With demand for energy increasing worldwide and an ever-stronger case building for anthropogenic climate change, the need for carbon-neutral fuels is becoming an imperative. Extensive transportation infrastructure based on liquid hydrocarbon fuels motivates development of processes using solar energy to convert CO2 and H2O to fuel precursors such as synthesis gas. Here, perspectives concerning the use of solar-driven thermochemical cycles using metal oxides to produce fuel precursors are given and, in particular, the important relationship between reactor design and material selection is discussed. Considering both a detailed thermodynamic analysis and factors such as reaction kinetics, volatility, and phase stability, an integrated analytical approach that facilitates material design is presented. These concepts are illustrated using three oxide materials currently receiving considerable attention: metal-substituted ferrites, ceria, and doped cerias. Although none of these materials is “ideal,” the tradeoffs made in selecting any one of them are clearly indicated, providing a starting point for assessing the feasibility of alternative materials developed in the future.
机译:随着世界范围内对能源需求的增长以及人为气候变化案例的不断建立,对碳中和燃料的需求已迫在眉睫。基于液态烃燃料的广泛运输基础设施推动了利用太阳能将CO2和H2O转化为燃料前体(例如合成气)的工艺开发。在此,给出了有关使用太阳能驱动的热化学循环的观点,该循环使用的是金属氧化物来生产燃料前体,特别是讨论了反应堆设计和材料选择之间的重要关系。综合考虑详细的热力学分析和反应动力学,挥发性和相稳定性等因素,提出了一种有助于材料设计的综合分析方法。这些概念使用目前受到广泛关注的三种氧化物材料进行了说明:金属取代的铁氧体,二氧化铈和掺杂的二氧化铈。尽管这些材料都不是“理想的”,但是清楚地表明了在选择任何一种材料时所要进行的权衡,这为评估将来开发替代材料的可行性提供了一个起点。

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