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Highly Dispersed Ni Atoms and O3 Promote Room-Temperature Catalytic Oxidation

  • Ruijie Yang
  • , Wanjian Zhang
  • , Yuefeng Zhang
  • , Yingying Fan
  • , Rongshu Zhu*
  • , Jian Jiang
  • , Liang Mei
  • , Zhaoyong Ren
  • , Xiao He
  • , Jinguang Hu
  • , Zhangxin Chen
  • , Qingye Lu*
  • , Jiang Zhou
  • , Haifeng Xiong
  • , Hao Li*
  • , Xiao Cheng Zeng*
  • , Zhiyuan Zeng*
  • *Corresponding author for this work
  • Harbin Institute of Technology Shenzhen
  • City University of Hong Kong
  • University of Calgary
  • School of Materials Science and Engineering
  • Xiamen University
  • Tohoku University

Research output: Contribution to journalArticlepeer-review

Abstract

Transition metal oxides are promising catalysts for catalytic oxidation reactions but are hampered by low room-temperature activities. Such low activities are normally caused by sparse reactive sites and insufficient capacity for molecular oxygen (O2) activation. Here, we present a dual-stimulation strategy to tackle these two issues. Specifically, we import highly dispersed nickel (Ni) atoms onto MnO2 to enrich its oxygen vacancies (reactive sites). Then, we use molecular ozone (O3) with a lower activation energy as an oxidant instead of molecular O2. With such dual stimulations, the constructed O3-Ni/MnO2 catalytic system shows boosted room-temperature activity for toluene oxidation with a toluene conversion of up to 98%, compared with the O3-MnO2 (Ni-free) system with only 50% conversion and the inactive O2-Ni/MnO2 (O3-free) system. This leap realizes efficient room-temperature catalytic oxidation of transition metal oxides, which is constantly pursued but has always been difficult to truly achieve.

Original languageEnglish
Pages (from-to)13568-13582
Number of pages15
JournalACS Nano
Volume18
Issue number21
DOIs
StatePublished - 28 May 2024
Externally publishedYes

Keywords

  • MnO
  • catalytic oxidation
  • highly dispersed Ni atoms
  • ozone
  • toluene

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