Solar Induced CO2 Reduction Achieved by Halide Tuning in Cesium Titanium (IV) Mixed Perovskite

Shravanti Joshi
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引用次数: 2

Abstract

Atmospheric carbon dioxide (CO2) levels are rising dramatically owing to the unmonitored usage of fossil fuels, raising not only environmental hazards but also energy crises. Green energy that is, derived from renewable sources is the better exploitation of solar energy and hence, a promising idea for an efficient conversion of CO2 to hydrocarbon fuels (CxHyOz). Currently, the research activities in carbon-neutral technologies are focused on developing novel catalysts and designing highly effective conversion kinetics. In this context, for since past few years, zero lead all-inorganic halide perovskites have been trending as capable candidates due to their exceptional optoelectronic properties. Herein, we report on the facile synthesis of cesium titanium (IV) mixed halide perovskite ((CsTi(Brx.I1-x)3) with x value varying from 0 to 1) by tuning the bromide (Br) to iodide (I) ratio and its use for solar-induced CO2 reduction. Scanning electron micrographs revealed hierarchical morphology composed of several nanowires assembled into microspheres resembling the dandelions. In the presence of natural sunlight, pristine cesium titanium (IV) mixed halide perovskite (CsTi(Brx.I1-x)3) with x=0.5, yielded ~159 µmol/g of CO gas, ~94 µmol/g of CH4 and ~14 µmol/g of H2 under 6 h of experimental conditions. A lower conversion rate was observed in presence of artificial solar and UV light, which could be due to experimental conditions. The findings reported here are anticipated to contribute to the vast field of novel materials for solar fuel generation.
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铯钛(IV)混合钙钛矿卤化物调谐实现太阳诱导CO2还原
由于对化石燃料的不加监控的使用,大气中的二氧化碳(CO2)水平正在急剧上升,这不仅加剧了环境危害,也加剧了能源危机。绿色能源,即来自可再生能源,是对太阳能的更好利用,因此,将二氧化碳有效地转化为碳氢化合物燃料是一个很有前途的想法(CxHyOz)。目前,碳中和技术的研究主要集中在开发新型催化剂和设计高效的转化动力学上。在这种背景下,在过去的几年里,零铅全无机卤化物钙钛矿由于其特殊的光电性能而成为有能力的候选者。本文报道了通过调节溴化(Br)与碘化(I)的比例,快速合成铯钛(IV)混合卤化物钙钛矿((CsTi(Brx.I1-x)3),其x值从0到1变化),并将其用于太阳能诱导CO2还原。扫描电子显微照片显示,由几根纳米线组装成类似蒲公英的微球组成的分层形态。在自然光照条件下,原始铯钛(IV)混合卤化物钙钛矿(CsTi(Brx.I1-x)3)在x=0.5的条件下,在实验条件下6 h产生~159µmol/g CO气体,~94µmol/g CH4和~14µmol/g H2。在人工太阳光和紫外光照射下观察到较低的转化率,这可能是由于实验条件所致。在此报告的研究结果有望为太阳能燃料发电新材料的广泛领域做出贡献。
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