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Plasmonic colloidosomes of black gold for solar energy harvesting and hotspots directed catalysis for CO2 to fuel conversion

机译:黑金的等离子体胶体用于太阳能收集和热点直接催化将二氧化碳转化为燃料

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摘要

In this work, we showed the tuning of the catalytic behavior of dendritic plasmonic colloidosomes (DPCs) by plasmonic hotspots. A cycle-by-cycle solution-phase synthetic protocol yielded high-surface-area DPCs by controlled nucleation–growth of gold nanoparticles. These DPCs, which had varying interparticle distances and particle-size distribution, absorb light over the entire visible region as well as in the near-infrared region of the solar spectrum, transforming gold into black gold. They produced intense hotspots of localized electric fields as well as heat, which were quantified and visualized by Raman thermometry and electron energy loss spectroscopy plasmon mapping. These DPCs can be effectively utilized for the oxidation reaction of cinnamyl alcohol using pure oxygen as the oxidant, hydrosilylation of aldehydes, temperature jump assisted protein unfolding and purification of seawater to drinkable water via steam generation. Black gold DPCs also convert CO2 to methane (fuel) at atmospheric pressure and temperature, using solar energy.
机译:在这项工作中,我们显示了通过等离子体热点对树突状等离子体胶体(DPC)催化性能的调节。逐周期的溶液阶段合成方案通过控制金纳米颗粒的成核生长来产生高表面积的DPC。这些具有不同的粒子间距离和粒度分布的DPC,吸收了整个可见光谱区域以及太阳光谱的近红外区域中的光,从而将金转化为黑金。他们产生了强烈的局部电场和热量热点,这些热点通过拉曼测温法和电子能量损失光谱等离激元映射进行了量化和可视化。这些DPC可有效地用于肉桂醇的氧化反应(使用纯氧作为氧化剂),醛的硅氢加成,温度跳跃辅助的蛋白质展开以及通过产生蒸汽将海水净化为饮用水。黑金DPC还利用太阳能在大气压和温度下将CO2转化为甲烷(燃料)。

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