A Straightforward Solvent‐Pair‐Enabled Multicomponent Coassembly Approach toward Noble‐Metal‐Nanoparticle‐Decorated Mesoporous Tungsten Oxide for Trace Ammonia Sensing

Author:

Jiang Fengluan1,Deng Yu12,Chen Keyu1,Li Jichun1,Huang Xin‐Yu1,Zou Yidong1,Wu Limin3,Xie Wenhe1,Deng Yonghui1ORCID

Affiliation:

1. Department of Chemistry, Shanghai Stomatological Hospital &School of Stomatology State Key Laboratory of Molecular Engineering of Polymers Shanghai Key Laboratory of Molecular Catalysis and Innovative Materials Collaborative Innovation Center of Chemistry for Energy Material (iChEM) Fudan University Shanghai 200433 P. R. China

2. State Key Laboratory for Modification of Chemical Fibers and Polymer Materials College of Materials Science and Engineering Donghua University Shanghai 201620 P. R. China

3. Institute of Energy and Materials Chemistry Inner Mongolia University Hohhot 010021 P. R. China

Abstract

AbstractThe straightforward synthesis of noble‐metal‐nanoparticle‐decorated ordered mesoporous transition metal oxides remains a great challenge due to the difficulty of balancing the interactions between precursors and templates. Herein, a solvent‐pair‐enabled multicomponent coassembly (SPEMC) strategy is developed for straightforward synthesis of noble‐metal‐nanoparticle‐decorated nitrogen‐doped ordered mesoporous tungsten oxide (abbreviated as NM/N‐mWO3, NM = Pt, Rh, Pd). The amphiphilic poly(ethylene oxide)‐block‐polystyrene (PEO‐b‐PS) copolymers coassemble with ammonium metatungstate (AMT) clusters and different kinds of hydrophilic noble metal precursors without phase separation. SPEMC synthesis requires no direct interaction between PEO‐b‐PS and AMT, thus the assembly equilibriums between noble metal precursors and PEO‐b‐PS can be readily controlled. The obtained NM/N‐mWO3 nanocomposites possess ordered mesopores, abundant oxygen vacancies, and metal–metal oxide interfaces. As a result, the Pt/N‐mWO3 sensors exhibit superior ammonia sensing performances with high sensitivity, an ultralow limit of detection (51.2 ppb), good selectivity, and long‐term stability. Spectroscopic analysis reveals that ammonia is oxidized stepwise to NO, NO2, and NO3 during the sensing process. Moreover, a portable wireless module based on Pt/N‐mWO3 sensor can recognize ppm‐level concentration of ammonia, which lays a solid foundation for its application in various fields.

Funder

Fundamental Research Funds for the Central Universities

National Outstanding Youth Science Fund Project of National Natural Science Foundation of China

Publisher

Wiley

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