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首页> 外文期刊>ACS applied materials & interfaces >Gas-Permeable Inorganic Shell Improves the Coking Stability and Electrochemical Reactivity of Pt toward Methane Oxidation
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Gas-Permeable Inorganic Shell Improves the Coking Stability and Electrochemical Reactivity of Pt toward Methane Oxidation

机译:透气性无机壳可提高PT朝向甲烷氧化的焦化稳定性和电化学反应性

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摘要

Solid oxide fuel cells produce electricity directly by oxidizing methane, which is the most attractive natural gas fuel, and metal nanocatalysts are a promising means of overcoming the poor catalytic activity of conventional ceramic electrodes. However, the lack of thermal and chemical stability of nanocatalysts is a major bottleneck in the effort to ensure the lifetime of metal-decorated electrodes for methane oxidation. Here, for the first time, this issue is addressed by encapsulating metal nanoparticles with gas-permeable inorganic shells. Pt particles approximately 10 nm in size are dispersed on the surface of a porous La0.75Sr0.25Cr0.5Mn0.5O3 (LSCM) electrode via wet infiltration and are then coated with an ultrathin Al2O3 layer via atomic layer deposition. The Al2O3 overcoat, despite being an insulator, significantly enhances the immunity to carbon coking and provides high activity for the electrochemical oxidation of methane, thereby reducing the reaction impedance of the Pt-decorated electrode by more than 2 orders of magnitude and making the electrode activity of the Pt-decorated sample at 650 degrees C comparable with those reported at 800 degrees C for pristine LSCM electrodes. These observations provide a new perspective on strategies to lower the operation temperature, which has long been a challenge related to hydrocarbon-fueled solid oxide fuel cells.
机译:固体氧化物燃料电池通过氧化甲烷直接产生电力,这是最具吸引力的天然气燃料,金属纳米催化剂是克服常规陶瓷电极差的催化活性不良的有希望的手段。然而,缺乏纳米催化剂的热和化学稳定性是努力确保甲烷氧化金属装饰电极的寿命的主要瓶颈。在此,首次通过将金属纳米颗粒与透气性无机壳包封来解决该问题。 Pt颗粒尺寸约为10nm,通过湿润渗透分散在多孔LA0.75SR0.25CR0.5MN0.5O3(LSCM)电极的表面上。然后通过原子层沉积用超薄Al 2 O 3层涂覆。尽管是绝缘体,Al 2 O 3外涂层,显着提高了碳焦化的免疫力,并为甲烷的电化学氧化提供了高活性,从而减少了PT装饰电极的反应阻抗超过2个数量级并使电极活性产生了2个在650℃下PT装饰样品与原始LSCM电极的800℃下报告的那些相当。这些观察结果提供了对降低操作温度的策略来提供新的视角,这长期以来一直是与碳氢化合物燃料的固体氧化物燃料电池相关的挑战。

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