新型双层核壳光催化剂 CdS-TiO2@NH2-MIL-101:在常温下提高二氧化碳和甲烷的转化率

EES catalysis Pub Date : 2024-01-04 DOI:10.1039/D3EY00264K
Yufei Huang, Ling Tan, Hanyu Ma, Xuan Wang, Yangqiang Huang, Jinping Yin, Zhiwu Liang and Xiao Luo
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引用次数: 0

摘要

通过化学手段将二氧化碳和甲烷转化为高附加值的化工产品,被视为解决日益严重的环境气候和能源危机的新兴工业技术。以太阳能为动力将 CO2 和 CH4 转化为合成气就是这样一种有望生产可再生燃料的技术。本文采用温和的实验方法制备了三元核壳 CdS-TiO2@NH2-MIL-101 复合材料,并通过一系列表征方法研究了其物理和化学性质。此外,还研究了不同质量分数的 MOF、TiO2 和 CdS 的耦合与光催化、光热和热催化 CH4 重整性能之间的相互作用。结果表明,室温下 CdS-TiO2@NH2-MIL-101 催化剂的 CO 和 H2 收率分别为 364.46 μmol g-1 和 100.43 μmol g-1,是 TiO2 催化性能的 1200%-1500% 。此外,CdS-TiO2@NH2-MIL-101 材料在 150°C 时的 CO 和 H2 产率分别为 2831.55 μmol g-1 和 1448.20 μmol g-1。基于同位素示踪实验和 CO2 吸附实验,提出了 CdS-TiO2@NH2-MIL-101 光催化 CH4 的可能综合机理。这项工作不仅为实现碳中和提出了新的研究理念,还为在室温下快速转化二氧化碳和甲烷提供了新的技术途径。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Novel double-layer core–shell photocatalyst CdS–TiO2@NH2-MIL-101: enhanced conversion of CO2 and CH4 at ambient temperature†

The conversion of CO2 and CH4 into high value-added chemical products by chemical means is regarded as an emerging industrial technology to solve the increasingly serious climate and energy crises. The solar-powered conversion of CO2 and CH4 to syngas is one such technology that holds promise for the production of renewable fuels. Here, ternary core–shell CdS–TiO2@NH2-MIL-101 composites were prepared using mild experimental methods and their physical and chemical properties were studied using a series of characterization methods. In addition, the interaction between the coupling of different mass fractions of MOF, TiO2, and CdS and the performance of photocatalytic, photothermal, and thermocatalytic CH4 reforming were investigated. The results show that the yields of CO and H2 of the CdS–TiO2@NH2-MIL-101 catalyst at room temperature are 364.46 μmol g−1 and 100.43 μmol g−1, respectively, which are 1200–1500% of the catalytic performance of TiO2. Moreover, the yields of CO and H2 of the CdS–TiO2@NH2-MIL-101 material at 150 °C are 2831.55 μmol g−1 and 1448.20 μmol g−1, respectively. Based on isotope tracer experiments and CO2 adsorption experiments, a possible comprehensive mechanism for CdS–TiO2@NH2-MIL-101 photocatalytic CH4 reforming is proposed. In addition to presenting a fresh research concept for achieving carbon neutrality, this work offers a new technical pathway for the quick conversion of CO2 and CH4 at room temperature.

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Back cover Correction: High photocatalytic yield in the non-oxidative coupling of methane using a Pd–TiO2 nanomembrane gas flow-through reactor Embedding the intermetallic Pt5Ce alloy in mesopores through Pt–C coordination layer interactions as a stable electrocatalyst for the oxygen reduction reaction† Efficient CO2-to-CO conversion in dye-sensitized photocatalytic systems enabled by electrostatically-driven catalyst binding† Green energy driven methane conversion under mild conditions
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