Interface Engineering p‐n Heterostructured Core–Shell Mesoporous Particles for Cascade Catalysis Promoted Gas Sensing

材料科学 介孔材料 级联 催化作用 壳体(结构) 纳米颗粒 纳米技术 粒子(生态学) 丙酮 醋酸 化学工程 有机化学 复合材料 化学 工程类 地质学 海洋学
作者
Lingxiao Xue,Jiahao Cui,Ruiying Li,Wenhe Xie,Keyu Chen,Hongxiu Yu,Limin Wu,Tianjun Ni,Qin Yue,Yonghui Deng
出处
期刊:Advanced Materials [Wiley]
卷期号:37 (30): e2416006-e2416006 被引量:17
标识
DOI:10.1002/adma.202416006
摘要

Cells have greatly inspired advancements in chemical processes, including leveraging the idea of cascade catalysis to drive thermodynamically unfavorable reactions and mimicking the compartmentalized architecture to design novel nanostructures. Here, a single-particle cascade catalysis promoted gas sensing platform is inspired to be designed (denoted as CoSnO3@mCeO2) by positionally assembling n-type mesoporous CeO2 catalytic shell on p-type CoSnO3 gas sensitive core. Uniform CoSn(OH)6@mCe(OH)x core-shell particles with tailored mesostructures, tunable large mesopores, and adjustable shell thicknesses are first constructed. After thermal treatment, CoSnO3@mCeO2 particles are obtained, which serve as cascade catalysis enhanced sensitive layer for fabricating gas sensors with independent catalytic and sensing control. As a proof-of-concept, the CoSnO3@mCeO2 gas sensors exhibit nearly three times higher acetone sensitivity (Rg/Ra = 26.81-50 ppm) than individual CoSnO3 sensors with an ultralow limit of detection of 5.22 ppb. The enhanced sensitivity is achieved through a tandem catalytic reforming-oxidation sensing procedure, which begins with the primary catalytic reforming of acetone to acetic acid in the mCeO2 shell, followed by the secondary sensing reaction of acetic acid in the CoSnO3 core. The design concept of cascade catalysis promotes gas sensor can serve as a paradigm for developing single-particle functional nanodevices for various applications.
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