富氧空位 NiAl2O4 支持的钯催化甲烷燃烧性能优越

IF 5.4 3区 材料科学 Q2 CHEMISTRY, PHYSICAL
Sha Li , Jie Li , Zirui He , Yao Sheng , Wen Liu
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引用次数: 0

摘要

甲烷催化燃烧是减少天然气燃料发动机温室气体排放的有效解决方案。然而,现有的甲烷燃烧催化剂存在低温活性不足、水热稳定性差等问题。在本研究中,我们证明了在富含氧空位的 NiAl2O4 尖晶石上支撑的 PdO 纳米粒子,通过简单而经济的方法制备,可显著提高 400 °C 以下甲烷燃烧的催化活性。煅烧温度是调节 NiAl2O4 尖晶石中氧空位浓度的有力手段。通过调整钯负载尖晶石催化剂的后续煅烧温度,可有效控制钯氧化物的粒径。优化后的催化剂 Pd/NiAl2O4-900-550(即在 900 °C 下煅烧 NiAl2O4,浸渍 Pd,然后在 550 °C 下煅烧)的 T50 低至 325 °C,同时表现出极佳的稳定性。在 750 °C、10% H2O 条件下连续处理 10 小时后,T50 仍低于 396 °C。催化剂在甲烷燃烧前后和原位燃烧时的表征证实,高氧空位浓度和稳定的氧化钯纳米颗粒都有助于提高催化剂的活性和稳定性。本研究为制备以具有丰富和可调氧空位的 NiAl2O4 尖晶石为支撑的具有成本效益和可扩展的氧化还原催化剂提供了一种新的范例。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Superior catalytic combustion of methane over Pd supported on oxygen vacancy-rich NiAl2O4†

Superior catalytic combustion of methane over Pd supported on oxygen vacancy-rich NiAl2O4†

Superior catalytic combustion of methane over Pd supported on oxygen vacancy-rich NiAl2O4†
Catalytic combustion of methane is an effective solution to reducing the greenhouse gas emission from natural gas-fueled engines. However, existing methane combustion catalysts suffer from insufficient low-temperature activity and poor hydrothermal stability. In this study, we demonstrate that PdO nanoparticles supported on oxygen vacancy-rich NiAl2O4 spinel, prepared by a simple and affordable procedure, render a remarkable enhancement in catalytic methane combustion below 400 °C. The calcination temperature was used as a robust means to tune the concentration of oxygen vacancies in the NiAl2O4 spinel. The particle size of PdO can be effectively controlled by adjusting the temperature of the subsequent calcination of the Pd-loaded spinel catalyst. The optimized catalyst, Pd/NiAl2O4-900–550, i.e. NiAl2O4 calcined at 900 °C, impregnated with Pd, and subsequently calcined at 550 °C, achieved a T50 as low as 325 °C, whilst exhibiting excellent stability. After continuous treatment in 10% H2O at 750 °C for 10 h, T50 remains at below 396 °C. The characterization of the catalyst before, after and in situ methane combustion confirms that the high oxygen vacancy concentration and stable PdO nanoparticles both contribute to its excellent activity and stability. The present study introduces a new paradigm for preparing cost-effective and scalable redox catalysts supported on NiAl2O4 spinel with rich and tunable oxygen vacancies.
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来源期刊
ACS Applied Energy Materials
ACS Applied Energy Materials Materials Science-Materials Chemistry
CiteScore
10.30
自引率
6.20%
发文量
1368
期刊介绍: ACS Applied Energy Materials is an interdisciplinary journal publishing original research covering all aspects of materials, engineering, chemistry, physics and biology relevant to energy conversion and storage. The journal is devoted to reports of new and original experimental and theoretical research of an applied nature that integrate knowledge in the areas of materials, engineering, physics, bioscience, and chemistry into important energy applications.
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