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首页> 外文期刊>Nanoscale >A soft-chemistry assisted strong metal support interaction on a designed plasmonic core shell photocatalyst for enhanced photocatalytic hydrogen production
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A soft-chemistry assisted strong metal support interaction on a designed plasmonic core shell photocatalyst for enhanced photocatalytic hydrogen production

机译:一个soft-chemistry辅助金属的强烈支持交互设计在电浆核心壳光催化剂对提高光催化制氢

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Engineering photocatalysts based on gold nanoparticles (AuNPs) has attracted great attention for the solar energy conversion due to their multiple and unique properties. However, boosting the photo catalytic performance of plasmonic materials for H-2 generation has some limitations. In this study, we propose a soft-chemistry method for the preparation of a strong metal-support interaction (SMSI) to enhance the photocatalytic production of H-2. The TiO2 thin overlayer covering finely dispersed AuNPs (forming an SMSI) boosts the photocatalytic generation of hydrogen, compared to AuNPs deposited at the surface of TiO2 (labelled as a classical system). The pathway of the charge carriers' dynamics regarding the system configuration is found to be different. The photogenerated electrons are collected by AuNPs in a classical system and act as an active site, while, unconventionally, they are injected back in the titania surface for an SMSI photocatalyst making the system highly efficient. Additionally, the adsorption energy of methanol, theoretically estimated using the density functional theory (DFT) methodology, is lower for the soft-chemistry SMSI photocatalyst accelerating the kinetics of photocatalytic hydrogen production. The SMSI obtained by soft-chemistry is an original concept for highly efficient photocatalytic materials, where the photon-to-energy conversion remains a major challenge.
机译:工程论文基于黄金纳米颗粒(AuNPs)吸引了伟大由于关注太阳能的转换他们多次和独特的属性。增加照片的催化性能电浆材料2代有一些的局限性。soft-chemistry的制备方法强烈的金属支撑交互(SMSI)提高光催化2的生产。二氧化钛薄覆盖物覆盖细分散AuNPs (SMSI)形成促进光催化代的氢,而AuNPs沉积在表面的二氧化钛(贴上经典的系统)。运营商的动力学系统配置不同。photogenerated AuNPs收集的电子在经典系统和作为一个活跃的网站,同时,另辟蹊径,他们注射回来在二氧化钛表面SMSI光催化剂使系统高效。甲醇的吸附能,理论上使用密度泛函理论估计(DFT)方法,对低soft-chemistry SMSI光催化剂加速光催化氢的动力学生产。高效是一个原始的概念吗光催化材料,仍然是一个主要photon-to-energy转换挑战。

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