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A nanoLDH catalyst with high CO2 adsorption capability for photo-catalytic reduction

机译:具有高CO2吸附能力的纳米高催化剂,用于光催化还原

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摘要

A benign catalyst with a considerable activity towards CO2 reduction is in demand to explore green processes. Layered double hydroxides (LDHs) are a promising candidate material for this purpose, because they exhibit a high catalytic activity even in aqueous solvents and are free from poisoning by water molecules. Herein, we demonstrate that NiAl LDH nanocrystals (approximate to 20 nm) exhibit a remarkably high photocatalytic activity toward CO2 reduction in aqueous media, thanks to their capability of adsorbing CO2 at high concentration. The present LDH photocatalyst with a high catalytic activity was obtained through a nanocrystallization induced by a homogeneous and rapid pH increase from an aqueous solution of concentrated metal salts. The rate of photocatalytic CO2 reduction over the nanoLDH catalyst (50 mol h(-1)) is 7 times higher than that over a highly-crystalline standard LDH catalyst (7.2 mol h(-1)) prepared through a conventional method. Systematic investigation revealed that the excellent catalytic properties of the present nanoLDH originate from its high affinity towards CO2 introduced as the gaseous state. This specific nature of the surface could be related to the metastable surface which was quenched by rapid hydroxide formation from concentrated solution of metals salts. The nanoLDH catalysts demonstrated here can be synthesized in a simple one-pot reaction in an aqueous solvent at a mild temperature. Further exploration of the material design by complexation with co-catalysts would give rise to catalysts for artificial photosynthesis based on nanoLDH materials.
机译:良性催化剂具有相当多的CO2减少活动,需要探索绿色过程。为此目的,层状双氢氧化物(LDHS)是一种有希望的候选材料,因为它们即使在水性溶剂中也表现出高催化活性,并且不受水分子中毒。在此,由于其在高浓度下吸附CO2的能力,Nial LD​​H纳米晶体(近似为20nm)表现出朝着水性介质的CO 2降低的显着高光催化活性。通过由均相和快速pH从浓浓浓浓盐盐水溶液增加,获得具有高催化活性的LDH光催化剂。通过常规方法制备的高度结晶标准LDH催化剂(70mol H(-1))的光催化二氧化碳速率(50mol H(-1))的速率高7倍,高于高晶的标准LDH催化剂(7.2mol H(-1))。系统研究表明,本发明的Nanoldh的优异催化性能源于其朝向作为气态引入的CO2的高亲和力。表面的这种特殊性可能与亚稳表面有关,该表面通过从金属盐的浓缩溶液中通过快速氢氧化物形成淬灭。这里证明的纳米高压催化剂可以在温和温度下在含水溶剂中的简单一罐反应中合成。通过与助催化剂的络合进行材料设计的进一步探索将产生基于纳米高材料的人造光合作用催化剂。

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