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Electrocatalytic water oxidation performance in an extended porous organic framework with a covalent alliance of distinct Ru sites

机译:Electrocatalytic水氧化的性能扩展与共价多孔有机框架独特的俄罗斯联盟网站

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The rational synthesis of durable, earth-abundant efficient electrocatalysts for the oxygen evolution reaction (OER) from water is one of the most important routes for storing renewable energy and minimizing fossil fuel combustion. The prime hurdles for effectively utilizing commercial RuO2 as (OER) electrocatalysts are its very low stability, catalyst deactivation, and high cost. In this work, we explored a Ru-integrated porous organic polymer (Ru@Bpy-POP) by a facile one-pot Friedel–Crafts alkylation strategy between redox-active (Ru(demob)3Cl2) and a carbazole unit, which is composed of unique features including an extended framework unit, isolated active sites, and tunable electrode kinetics. Ru@Bpy-POP can serve as a bridge between a Metal–Organic Framework (MOF) and POP-based catalytic systems with a balanced combination of covalent bonds (structural stability) and open metal sites (single site catalysis). Ru@Bpy-POP, deposited on a three-dimensional nickel foam electrode support, exhibits a promising electrocatalytic OER activity with an ultra-low ruthenium loading compared to a benchmark RuO2 catalyst, providing an overpotential of about 270 mV to reach 10 mA cm−2 in an alkaline medium. Moreover, a high current density of 248 mA cm−2 was achieved for the Ru@Bpy-POP catalyst at only 1.6 V (vs. RHE), which is much higher than 91 mA cm−2 for commercial RuO2. The robust, albeit highly conjugated, POP framework not only triggered facile electro-kinetics but also suppressed aggregation and metallic corrosion during electrolysis. In particular, the benefits of covalent integration of distinct Ru sites into the framework can modulate intermediate adsorption and charge density, which contributes to its exceptional OER activity. All of the critical steps involved in OER are complemented by Density Functional Theory (DFT) calculations, which suggest that electrocatalytic water oxidation proceeds from a closed-shell configuration to open-shell electronic configurations with high-spin states. These open-shell configurations are more stable than their closed-shell counterparts by 1 eV, improving the overall catalytic activity.
机译:合理的合成耐用,地球上充足高效electrocatalysts氧气进化反应(OER)从水的最重要的途径来存储可再生能源和减少化石燃料燃烧。有效利用的主要障碍商业RuO2 (OER) electrocatalysts是它非常低的稳定,催化剂失活成本太高。Ru-integrated多孔有机聚合物(Ru@Bpy-POP)简单锅傅克烷基化cl2 redox-active之间策略(俄文(复员)3)咔唑单元,它是由独特的功能包括一个扩展的框架单元,孤立的活跃的网站,可调的电极动力学。之间(MOF)和有机框架POP-based催化系统平衡共价键(结构的组合稳定)和开放的金属(单个网站的网站催化作用)。三维泡沫镍电极的支持,展示一个有前途的electrocatalytic OER活动超低钌加载基准RuO2催化剂相比,提供大约270 mV的过电压达到10马厘米−2在碱性介质。248毫安的电流密度厘米−2实现Ru@Bpy-POP催化剂仅1.6 V(和流值),马远远高于91厘米−2商业RuO2。共轭、流行框架不仅引发了灵巧的电动也抑制聚合和金属腐蚀电解。共价集成不同的俄文网站该框架可以调节中间吸附和电荷密度的贡献其特殊的OER的活动。OER是补充的关键步骤通过密度泛函理论(DFT)计算,这表明electrocatalytic水吗从一个封闭外壳氧化所得配置开壳层电子配置与高自旋状态。开壳层配置更稳定由1 eV闭壳同行,提高整体的催化活性。

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