首页> 美国卫生研究院文献>Advanced Science >Laminated Hybrid Junction of Sulfur‐Doped TiO2 and a Carbon Substrate Derived from Ti3C2 MXenes: Toward Highly Visible Light‐Driven Photocatalytic Hydrogen Evolution
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Laminated Hybrid Junction of Sulfur‐Doped TiO2 and a Carbon Substrate Derived from Ti3C2 MXenes: Toward Highly Visible Light‐Driven Photocatalytic Hydrogen Evolution

机译:掺杂硫的TiO2与Ti3C2 MXenes衍生的碳基质的层状杂化结:朝着高可见光驱动的光催化氢演化

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摘要

TiO2 is an ideal photocatalyst candidate except for its large bandgap and fast charge recombination. A novel laminated junction composed of defect‐controlled and sulfur‐doped TiO2 with carbon substrate (LDC‐S‐TiO2/C) is synthesized using the 2D transition metal carbides (MXenes) as a template to enhance light absorption and improve charge separation. The prepared LDC‐S‐TiO2/C catalyst delivers a high photocatalytic H2 evolution rate of 333 µmol g−1 h−1 with a high apparent quantum yield of 7.36% at 400 nm and it is also active even at 600 nm, resulting into a 48 time activity compared with L‐TiO2/C under visible light irradiation. Further theoretical modeling calculation indicates that such novel approach also reduces activation energy of hydrogen production apart from broadening the absorption wavelength, facilitating charge separation, and creating a large surface area substrate. This synergic effect can also be applied to other photocatalysts' modification. The study provides a novel approach for synthesis defective metal oxides based hybrids and broaden the applications of MXene family.
机译:TiO2除具有较大的带隙和快速的电荷重组外,是理想的光催化剂候选物。以二维过渡金属碳化物(MXenes)为模板,合成了一种由缺陷控制和硫掺杂的TiO2与碳基质(LDC‐S‐TiO2 / C)组成的新型叠层结,以增强光吸收和改善电荷分离。制备的LDC-S-TiO2 / C催化剂具有333 µmol g -1 h -1 的高光催化H2析出速率,表观量子产率为7.36%。 400 nm,甚至在600 nm时也有活性,与可见光照射下的L-TiO2 / C相比,具有48倍的活性。进一步的理论模型计算表明,这种新方法除了加宽吸收波长,促进电荷分离并创建大表面积的基材外,还降低了产氢的活化能。这种协同作用也可以应用于其他光催化剂的改性。该研究为合成基于缺陷的金属氧化物的杂化物提供了一种新颖的方法,并拓宽了MXene系列的应用。

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