Artificial photosynthesis for CO2-to-ethylene conversion enabled by dye-sensitised carbon nitrides
Artificial photosynthesis for CO2-to-ethylene conversion enabled by dye-sensitised carbon nitrides
批准号:
2749474
负责人:
金额:
$0.0万
依托单位:
依托单位国家:
英国
项目类别:
Studentship
财政年份:
2022
资助国家:
英国
项目状态:
未结题
起止时间:
2022 至 --
中文摘要
光电化学(PEC)电池是一种独特的装置,它将太阳光直接转化为化学键,并具有电解的紧凑性和催化性。光电催化是一种很有前途的解决方案,可用于太阳能燃料的规模化合成,即具有可交付能量含量的化学品,以及光重整,即光驱动的废物转化为增值产品。在阴极方面,太阳能驱动的CO2还原为碳氢化合物和其他有机分子是太阳能燃料合成和脱碳战略的一个有前途的场所。对于阳极反应,甘油已被提议作为优良的光重整底物,其易于氧化和其当前作为生物柴油合成的副产物的过量生产。然而,甘油氧化通常导致产物的混合物,包括甘油醛和1,3-二羟基丙酮,后者更有价值。这个博士的目的。该项目将设计和制造一个独立的PEC装置,包括一个用于从CO2高速合成C2-C3烃的光电阴极和一个用于在酸性环境中将甘油选择性光重整为1,3-二羟基丙酮的光电阳极。在铜基光电阴极中加入串联钙钛矿太阳能电池将使CO2在非常正的起始电位和破纪录的光电流下转化为碳氢化合物。另一方面,不同的光吸收半导体,包括聚合碳氮化物和钙钛矿,将被筛选用于制造甘油氧化的光阳极。阳极反应的选择性将通过最先进的Pt-Bi电催化剂或底物特异性酶来实现。最后,这两个电极将结合在一个独立的设备中,用于无偏压,太阳能驱动的完整氧化还原循环。
英文摘要
Photoelectrochemical (PEC) cells are unique devices combining direct solar light conversion into chemical bonds with the compactness and catalytic tuneability of electrolysis. Photoelectrocatalysis is a promising solution for the scalable synthesis of solar fuels, i.e. chemicals with deliverable energetic content, and photoreforming, that is the light-driven conversion of waste into added-value products. On the cathodic side, solar-driven CO2 reduction to hydrocarbons and other organic molecules is a promising venue to solar fuels synthesis and strategy for decarbonisation. For the anodic reaction, glycerol has been proposed as excellent photoreforming substrate for its facile oxidation and its current overproduction as a byproduct of the synthesis of biodiesel. However, glycerol oxidation usually leads to a mixture of products, including glyceraldehyde and 1,3-dihydroxyacetone, with the latter being more valuable. The purpose of this Ph.D. project will be to design and fabricate a stand-alone PEC device comprising a photocathode for high-rate synthesis of C2-C3 hydrocarbons from CO2 and a photoanode for the selective photoreforming of glycerol to 1,3-dihydroxyacetone in acidic environment. The incorporation of a tandem perovskite solar cell in a copper-based photocathode will enable conversion of CO2 to hydrocarbons at very positive onset potentials and record-breaking photocurrents. On the other hand, different light-absorbing semiconductors, including polymeric carbon nitrides and perovskites, will be screened for the fabrication of a photoanode for glycerol oxidation. Selectivity of the anodic reaction will be achieved either by state-of-the-art Pt-Bi electrocatalysts or substrate-specific enzymes. Finally, the two electrodes will be combined in a stand-alone device for a bias-free, solar-driven complete redox cycle.
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