A 'Fluid' Nickel-Based Ferrite as an Efficient Redox Material for Thermochemical Two-Step CO 2 Splitting

Jincheng Huang, Yu Fu, Yonghui Zhao, Shenggang Li, Jun Zhang, Yuhan Sun
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Abstract

The solar-driven, thermochemical two-step CO2 splitting reaction is essentially hindered by sintering of the redox material, and thermostable supports are often employed to alleviate this issue, although they usually play a limited role due to the harsh thermal condition. Herein, we demonstrate a distinct strategy, by engineering a “fluid” nickel-based ferrite material without using any support. It maintains a steady-state CO yield over 20 cycles, which is up to three times higher than that of the traditional NiFe2O4/ZrO2 material. Characterizations and first principles calculations suggest that its superiority can be attributed to the significantly enhanced flow of Fe cations, dramatically different from the NiFe2O4/ZrO2, where the oxygen ion undertakes the major transport. Such cation diffusion mode in our novel ferrite material provides a more accessible path to the bulk reaction, leading to a fast bulk reaction kinetics in the ferrite. Thus, we developed a new approach to overcome the sintering problem of ferrite materials.
一种“流体”镍基铁氧体作为热化学两步分解二氧化碳的有效氧化还原材料
太阳能驱动的热化学两步CO2分解反应基本上受到氧化还原材料烧结的阻碍,而热稳定支架通常用于缓解这一问题,尽管由于恶劣的热条件,它们通常发挥有限的作用。在这里,我们展示了一种独特的策略,通过设计一种“流体”镍基铁氧体材料,而不使用任何支撑。它在20次循环中保持稳定的CO产率,比传统的NiFe2O4/ZrO2材料高出三倍。表征和第一性原理计算表明,其优势可归因于Fe阳离子的显著增强流动,这与NiFe2O4/ZrO2有很大不同,其中氧离子主要进行输运。这种阳离子扩散模式在我们的新型铁氧体材料中提供了一个更容易接近的体反应路径,导致铁氧体中快速的体反应动力学。因此,我们开发了一种新的方法来克服铁氧体材料的烧结问题。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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