Laghrissi Ayoub, Es-Souni Mohammed
Currently with the Technical Faculty, Mads Clausen Institute, University of Southern Denmark, 6400 Sonderborg, Denmark.
Formerly with Kiel University of Applied Sciences, Grenzstrasse 3, D-24149 Kiel, Germany.
Nanomaterials (Basel). 2023 Jul 5;13(13):2007. doi: 10.3390/nano13132007.
Ordered thin films of Au nanorods (NRs) on Ti/Au/Si heterostructure substrates are electrodeposited in thin film aluminum oxide templates and, after template removal, serve as supports for Pd and Pt nanocatalysts. Based on previous work which showed a better electrocatalytic performance for layered Au/Pd nanostructures than monolithic Pd, electrodeposited 20 nm Pd discs on Au-NRs are first investigated in terms of their catalytic activity for the hydrogen evolution reaction (HER) and compared to monolithic 20 nm Pd and Pt discs. To further boost performance, the interfacial interaction area between the Au-NRs supports and the active metals (Pt and Pd) was increased via magnetron sputtering an extremely thin layer of Pt and Pd (20 nm overall sputtered thickness) on the Au-NRs after template removal. In this way, the whole NR surface (top and lateral) was covered with Pt and Pd nanoparticles, ensuring a maximum interfacial contact between the support and the active metal. The HER performance obtained was substantially higher than that of the other nanostructures. A Salient result of the present work, however, is the superior activity obtained for sputtered Pd on Au in comparison to that of sputtered Pt on Au. The results also show that increasing the Au-NR length translates in a strong increase in performance. Density functional theory calculations show that the interfacial electronic interactions between Au and Pd lead to suitable values of hydrogen adsorption energy on all possible sites, thus promoting faster (barrier-free diffusion) hydrogen adsorption and its recombination to H. A Volmer-Heyrovsky mechanism for HER is proposed, and a volcano plot is suggested based on the results of the Tafel plots and the calculated hydrogen adsorption energies.
在Ti/Au/Si异质结构衬底上的金纳米棒(NRs)有序薄膜通过在薄膜氧化铝模板中进行电沉积制备,去除模板后,用作钯和铂纳米催化剂的载体。基于先前的工作表明层状金/钯纳米结构比整体钯具有更好的电催化性能,首先研究了在金纳米棒上电沉积的20纳米钯圆盘对析氢反应(HER)的催化活性,并与整体的20纳米钯和铂圆盘进行比较。为了进一步提高性能,在去除模板后,通过磁控溅射在金纳米棒上溅射一层极薄的铂和钯(总溅射厚度为20纳米),增加金纳米棒载体与活性金属(铂和钯)之间的界面相互作用面积。通过这种方式,整个纳米棒表面(顶部和侧面)都覆盖有铂和钯纳米颗粒,确保载体与活性金属之间有最大的界面接触。所获得的析氢反应性能显著高于其他纳米结构。然而,本工作的一个显著结果是,与在金上溅射铂相比,在金上溅射钯具有更高的活性。结果还表明,增加金纳米棒的长度会导致性能大幅提高。密度泛函理论计算表明,金和钯之间的界面电子相互作用导致在所有可能位置上氢吸附能的合适值,从而促进更快的(无势垒扩散)氢吸附及其重组为氢气。提出了析氢反应的Volmer-Heyrovsky机理,并根据塔菲尔曲线结果和计算得到的氢吸附能绘制了火山图。