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首页> 外文期刊>The journal of physical chemistry, C. Nanomaterials and interfaces >Boosting Hydrogen Evolution Activities by Strong Interfacial Electronic Interaction in ZnO@Bi(NO3)(3) Core-Shell Structures
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Boosting Hydrogen Evolution Activities by Strong Interfacial Electronic Interaction in ZnO@Bi(NO3)(3) Core-Shell Structures

机译:通过ZnO @ BI(NO3)(3)核心壳结构的强界面电子相互作用来提高氢进化活动

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摘要

Base-free hydrogen evolution from formaldehyde solution represents one of the most important reactions in the fuel cell based hydrogen economy. However, limited progresses have been made in the rational design of cheap and efficient heterogeneous catalysts for this reaction. Here, we for the first time propose a Lewis acid-base combination strategy to design efficient heterogeneous catalysts for HER from HCHO/H2O. By utilizing the Lewis acid/base properties of Bi(NO3)(3)center dot 5H(2)O/ZnO, we successfully fabricated core-shell structured ZnO@Bi(NO3)(3) composites. A strong interfacial electronic interaction between ZnO and Bi(NO3)(3)center dot 5H(2)O is evidenced by the unprecedented 3.3 eV upshift of Zn 2p and 0.5 eV downshift of Bi 4f, which boosts the HER activities of inert ZnO and Bi(NO3)(3)center dot 5H(2)O. Destroying the interfacial electronic interaction leads to a fast deactivation while increasing interfacial sites proportionally enhances the activity, indicating that interfacial sites are real active sites. DFT calculations confirm that ZnO@Bi(NO3)(3) composites greatly lower the activation barrier of H-2 formation from two adsorbed H atoms and thus promote the H-2 production. The Lewis acid-base combination strategy also applies to the TiO2@Bi(NO3)(3) system, further highlighting the importance of salt-metal oxide interface in heterogeneous catalysis.
机译:甲醛溶液的无基氢蒸馏是基于燃料电池基氢经济中最重要的反应之一。然而,在该反应的廉价和有效的非均相催化剂的合理设计中取得了有限的进展。在这里,我们首次提出一种Lewis酸碱组合策略,以从Hcho / H 2 O设计高效的异质催化剂。通过利用Bi(NO3)(3)中心点5H(2)O / ZnO的Lewis酸/碱性性能,我们成功地制造了核心壳结构ZnO @ Bi(NO3)(3)复合材料。 ZnO和Bi(3)中心点5h(2)o之间的强大界面电子相互作用是通过Zn 2p的前所未有的3.3 eV升档和BI 4F的0.5 EV下档,增强了她的惰性ZnO的活动和Bi(No3)(3)中心点5h(2)o。破坏界面电子相互作用导致快速停用,同时增加界面部位成比例地增强了活动,表明界面位点是真正的活跃点。 DFT计算证实,ZnO @ Bi(No3)(3)复合材料极大地降低了从两种吸附的H原子的H-2形成的活化屏障,从而促进H-2生产。 Lewis酸碱组合策略也适用于TiO2 @ Bi(No3)(3)系统,进一步突出了盐金属氧化物界面在异质催化中的重要性。

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