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首页> 外文期刊>ACS Omega >Spray-Coated Thin-Film Ni-Oxide Nanoflakes as Single Electrocatalysts for Oxygen Evolution and Hydrogen Generation from Water Splitting
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Spray-Coated Thin-Film Ni-Oxide Nanoflakes as Single Electrocatalysts for Oxygen Evolution and Hydrogen Generation from Water Splitting

机译:喷涂薄膜氮氧化物Ni-氧化物作为单一电催化剂,用于氧气分裂的氧气进化和氢气

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Electrochemical water splitting is a key process in many electrochemical energy conversion and storage phenomena. Simple synthesis methods to make highly porous and active nanostructured catalytic materials with large electroactive surface areas are very important to implement water-to-fuel conversion schemes. Herein, ultrafine, transparent thin-film nickel-oxide (NiO_(x) ) nanoflakes are facilely synthesized following a simple spray-coating method from a solution-phase precursor. The NiO_(x) nanoscale structures are grown on the FTO surface in the form of highly uniform smooth thin films. They are employed as promising bifunctional electrocatalysts for the overall water splitting process under alkaline conditions. During water oxidation catalysis, NiO_(x) -SC/FTO initiates the oxygen evolution reaction (OER) at an overpotential η of just 250 mV while generating current decade at just 300 mV and demonstrates well-balanced kinetics toward OER. 10 mA cm~(–2) current density remains persistent for many hours of continuous electrolysis at just 1.53 V_(RHE) illustrating high robustness of the system. The catalyst also showed substantial activity and durability toward the hydrogen evolution reaction (HER) under the same electrochemical conditions. Tafel slopes of just 57 and 89 mV dec~(–1) for OER and HER in 0.5 M aqueous KOH solution, respectively, showing high intrinsic kinetics for electrocatalysis. Having high electrochemical surface area and an optimum number of electrochemically active sites, these transparent NiO_(x) thin films can be advantageously combined with photoelectrochemical devices for light-driven water-to-fuel conversion systems.
机译:电化学水分解是许多电化学能量转换和储存现象的关键过程。制备具有大电活性表面积的高孔和活性纳米结构催化材料的简单合成方法对于实施水 - 燃料转化方案非常重要。本文,超细透明薄膜氧化物(NiO 3 _(x))纳米薄片在来自溶液相前体的简单喷涂法之后易于合成。 NIO _(x)纳米级结构以高度均匀的光滑薄膜的形式生长在FTO表面上。它们被用作碱性条件下的整个水分裂过程的有前途的双官能电催化剂。在水氧化催化期间,NIO _(X)-C / FTO在250 mV的过电位η处启动氧气进化反应(OER),同时产生仅在300 mV的电流十年,并展示oer良好平衡的动力学。 10 mA cm〜(-2)电流密度保持持续数小时的连续电解于仅1.53 V_(RHE),说明系统的高稳健性。催化剂还显示出在相同的电化学条件下致氢进化反应(她)的显着活性和耐久性。 Tafel斜坡仅为57和89 MV DEC〜(-1),分别为0.5米酸值水溶液,显示出高固有动力学的电常床。具有高电化学表面积和最佳的电化学活性位点,这些透明的NIO _(X)薄膜可以有利地与光电驱动的水 - 燃料转换系统的光电化学器件组合。

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