过电位
塔菲尔方程
化学
制氢
阳极
化学工程
阴极
电极
氢
电解
纳米棒
吉布斯自由能
分解水
碱性水电解
电解水
电化学
催化作用
物理化学
热力学
物理
工程类
电解质
有机化学
光催化
生物化学
作者
Yong Zuo,Sebastiano Bellani,Gabriele Saleh,Michele Ferri,Dipak V. Shinde,Marilena Isabella Zappia,Joka Buha,Rosaria Brescia,Mirko Prato,Roberta Pascazio,Abinaya Annamalai,Danilo Oliveira de Souza,Luca De Trizio,Ivan Infante,Francesco Bonaccorso,Liberato Manna
摘要
Combining multiple species working in tandem for different hydrogen evolution reaction (HER) steps is an effective strategy to design HER electrocatalysts. Here, we engineered a hierarchical electrode for the HER composed of amorphous-TiO2/Cu nanorods (NRs) decorated with cost-effective Ru–Cu nanoheterostructures (Ru mass loading = 52 μg/cm2). Such an electrode exhibits a stable, over 250 h, low overpotential of 74 mV at −200 mA/cm2 for the HER in 1 M NaOH. The high activity of the electrode is attributed, by structural analysis, operando X-ray absorption spectroscopy, and first-principles simulations, to synergistic functionalities: (1) mechanically robust, vertically aligned Cu NRs with high electrical conductivity and porosity provide fast charge and gas transfer channels; (2) the Ru electronic structure, regulated by the size of Cu clusters at the surface, facilitates the water dissociation (Volmer step); (3) the Cu clusters grown atop Ru exhibit a close-to-zero Gibbs free energy of the hydrogen adsorption, promoting fast Heyrovsky/Tafel steps. An alkaline electrolyzer (AEL) coupling the proposed cathode and a stainless-steel anode can stably operate in both continuous (1 A/cm2 for over 200 h) and intermittent modes (accelerated stress tests). A techno-economic analysis predicts the minimal overall hydrogen production cost of US$2.12/kg in a 1 MW AEL plant of 30 year lifetime based on our AEL single cell, hitting the worldwide targets (US$2–2.5/kgH2).
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