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P25@CoAl layered double hydroxide heterojunction nanocomposites for CO2 photocatalytic reduction

机译:p25 @ Coal层状双氢氧化物异质结纳米复合材料,用于CO2光催化还原

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摘要

Artificial photosynthesis driven by inorganic photocatalysts offers a promising route to renewable solar fuels, however efficient CO2 photoreduction remains a challenge. A family of hierarchical nanocomposites, comprising P25 nanoparticles encapsulated within microporous CoAl-layered double hydroxides (CoAl-LDHs) were prepared via a one-pot hydrothermal synthesis. Heterojunction formation between the visible light absorbing CoAl-LDH and UV light absorbing P25 semiconductors extends utilisation of the solar spectrum, while the solid basicity of the CoAl-LDH increases CO2 availability at photocatalytic surfaces. Matching of the semiconductor band structures and strong donor–acceptor coupling improves photoinduced charge carrier separation and transfer via the heterojunction. Hierarchical P25@CoAl-LDH nanocomposites exhibit good activity and selectivity (>90%) for aqueous CO2 photoreduction to CO, without a sacrificial hole acceptor. This represents a facile and cost-effective strategy for the design and development of LDH-based nanomaterials for efficient photocatalysis for renewable solar fuel production from particularly CO2 and water.
机译:由无机光催化剂驱动的人工光合作用为获得可再生太阳能提供了一条有希望的途径,但是有效的CO2光还原仍然是一个挑战。通过一锅水热合成制备了一系列纳米级复合材料,包括封装在微孔CoAl层状双氢氧化物(CoAl-LDHs)中的P25纳米颗粒。吸收可见光的CoAl-LDH和吸收紫外线的P25半导体之间的异质结形成扩展了太阳光谱的利用,而CoAl-LDH的固体碱性提高了光催化表面的CO2利用率。半导体能带结构的匹配和强大的供体-受体耦合可改善光致电荷载流子的分离和通过异质结的转移。分层P25 @ CoAl-LDH纳米复合材料在没有牺牲空穴受体的情况下,对水性CO2光还原为CO表现出良好的活性和选择性(> 90%)。这代表了一种设计和开发基于LDH的纳米材料的可行且具有成本效益的策略,该纳米材料可有效地光催化从特别是CO2和水生产可再生太阳能燃料。

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