再生(生物学)
热力学
统计物理学
熵(时间箭头)
生物
细胞生物学
物理
作者
Shengtai Hou,Xuefeng Ma,Shu Yuan,Jiafeng Bao,Qiuyue Zhang,Mingshu Chen,Pengfei Zhang,Sheng Dai
标识
DOI:10.1038/s41467-021-26160-8
摘要
Abstract The sintering of Supported Transition Metal Catalysts (STMCs) is a core issue during high temperature catalysis. Perovskite oxides as host matrix for STMCs are proven to be sintering-resistance, leading to a family of self-regenerative materials. However, none other design principles for self-regenerative catalysts were put forward since 2002, which cannot satisfy diverse catalytic processes. Herein, inspired by the principle of high entropy-stabilized structure, a concept whether entropy driving force could promote the self-regeneration process is proposed. To verify it, a high entropy cubic Zr 0.5 (NiFeCuMnCo) 0.5 O x is constructed as a host model, and interestingly in situ reversible exsolution-dissolution of supported metallic species are observed in multi redox cycles. Notably, in situ exsolved transition metals from high entropy Zr 0.5 (NiFeCuMnCo) 0.5 O x support, whose entropic contribution (TΔS config = T⋆12.7 J mol −1 K −1 ) is predominant in ∆G, affording ultrahigh thermal stability in long-term CO 2 hydrogenation (400 °C, >500 h). Current theory may inspire more STWCs with excellent sintering-resistance performance.
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