首页> 外文期刊>Journal of Materials Chemistry, A. Materials for energy and sustainability >Evolution of dealloyed PdBi2 nanoparticles as electrocatalysts with enhanced activity and remarkable durability in hydrogen evolution reactions
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Evolution of dealloyed PdBi2 nanoparticles as electrocatalysts with enhanced activity and remarkable durability in hydrogen evolution reactions

机译:作为氢催化剂具有增强活性的电催化剂和氢气进化反应的显着耐久性的易实用的PDBI2纳米粒子的演变

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摘要

The development of non-Pt based electrocatalysts for the hydrogen evolution reaction (HER) is a prerequisite for the generation of hydrogen, a feasible and cost-effective source of hydrogen. Structural transitions and generating metal deficiency are the effective ways of manipulating the d-band centre of a metal surface which enhances the catalytic activity of metal nanoparticles towards the HER. Charge-transfer from in situ generated oxide species to the metal centre also leads to an enhancement in catalytic activity towards the HER. In the present work, we report a facile colloidal synthesis of PdBi2 nanoparticles using sodium borohydride as the reducing agent. Upon annealing the as-synthesized nanoparticles, a phase transition from the lower symmetry monoclinic phase to the higher symmetry tetragonal phase has been observed, and hence a change in morphology from agglomerated to core-shell nanoparticles. Potential electrochemical cycling of both monoclinic and tetragonal PdBi2 leads to the formation of a Pd-rich PdBi2-x alloy with enhanced catalytic activity (onset potential: -11 mV and -18 mV vs. the RHE; 20 mA cm(-2) current density at an overpotential of similar to 140 mV and similar to 207 mV for monoclinic and tetragonal phases, respectively). The low co-ordination number of Pd active sites formed by the dissolution of Bi alters the d-band centre of Pd, and hence the optimal energy required for hydrogen adsorption leading to enhanced activity. Although the obtained composition after potential cycling is almost similar for both phases it is seen that the dealloyed monoclinic phase shows higher activity as compared to the dealloyed tetragonal one. Cyclic voltammetry of the monoclinic PdBi2 shows the formation of Bi-O species after potential cycling. Electron transfer from the Bi-O species to the Pd centre enhances the charge-transfer kinetics of the HER on the catalyst surface and hence an increased catalytic activity of the monoclinic phase as compared to the tetragonal one. Thus, in situ generated oxide species facilitate charge-transfer from oxide to the metal surface which in turn enhances catalytic activity towards the HER.
机译:用于氢气进化反应(她)的非PT基于PT的电催化剂的发展是产生氢的前提,是氢的产生,可行且经济有效的氢来源。结构转变和产生金属缺陷是操纵金属表面的D频带中心的有效方法,其增强了金属纳米颗粒的催化活性朝向她。原位生成的氧化氧化物物种对金属中心的电荷转移也导致催化活性对她的增强。在本作工作中,我们使用硼氢化钠作为还原剂向Pdbi2纳米颗粒报告容易胶体合成。在退火时,已经观察到从较低对称的单斜相到较高对称四方相的相转变,因此从聚集到核 - 壳纳米颗粒的形态变化。单斜叶和四方PDBI2的电化电化学循环导致形成具有增强催化活性的PD-富含PDBI2-X合金(发病潜力:-11mV和-18mV与RHE; 20 mA cm(-2)电流密度在类似于140 mV的过电位,分别类似于207mV的单斜斜肌和四方相。通过Bi溶解形成的Pd活性位点的低调数改变了Pd的D频带中心,因此氢吸附所需的最佳能量导致增强活性。虽然在潜在循环后获得的组合物几乎相似,但是可以看出,与富矿四方的四边形相比,Deployed单斜相显示出更高的活性。单斜螺母2的循环伏安法显示潜在循环后的Bi-O物种的形成。从Bi-O物种到PD中心的电子转移增强了她在催化剂表面上的电荷转移动力学,因此与四边形一体相比,单晶相的催化活性增加。因此,原位产生的氧化氧化物物质促进从氧化物到金属表面的电荷转移,这反过来又提高了对她的催化活性。

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