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首页> 外文期刊>Journal of Physics. Condensed Matter >Thermodynamic limits to energy conversion in solar thermal fuels
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Thermodynamic limits to energy conversion in solar thermal fuels

机译:太阳能热燃料中的能量转换热力学限制

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Solar thermal fuels (STFs) are an unconventional paradigm for solar energy conversion and storage which is attracting renewed attention. In this concept, a material absorbs sunlight and stores the energy chemically via an induced structural change, which can later be reversed to release the energy as heat. An example is the azobenzene molecule which has a cis-trans photoisomerization with these properties, and can be tuned by chemical substitution and attachment to templates such as carbon nanotubes, small molecules, or polymers. By analogy to the Shockley-Queisser limit for photovoltaics, we analyze the maximum attainable efficiency for STFs from fundamental thermodynamic considerations. Microscopic reversibility provides a bound on the quantum yield of photoisomerization due to fluorescence, regardless of details of photochemistry. We emphasize the importance of analyzing the free energy, not just enthalpy, of the metastable molecules, and find an efficiency limit for conversion to stored chemical energy equal to the Shockley-Queisser limit. STF candidates from a recent high-throughput search are analyzed in light of the efficiency limit.
机译:太阳能热燃料(STF)是太阳能转换和储存的非常规范式,吸引着重新关注。在这一概念中,一种材料通过诱导的结构变化来吸收阳光,并通过诱导的结构变化将能量储存,这可以越床逆转以将能量释放为热量。一个例子是具有与这些性质的顺式 - 反式光学异构化的偶氮苯分子,并且可以通过化学取代来调节和对模板的附着,例如碳纳米管,小分子或聚合物。通过对光伏的震撼批准者限制进行类比,我们从基本热力学考虑到STF的最大可达到效率。显微透视性提供了由于荧光引起的量子化的量子产量,无论光化学的细节如何。我们强调分析自由能量,不仅是亚稳态分子的焓,并找到转换的效率限制等于Shockley-exeiss限制。根据效率限制,分析了最近的高吞吐量搜索的STF候选。

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