4.6 Article

MOF-Derived Mesoporous and Hierarchical Hollow-Structured In2O3-NiO Composites for Enhanced Triethylamine Sensing

Journal

ACS SENSORS
Volume 6, Issue 9, Pages 3451-3461

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/acssensors.1c01374

Keywords

MOF; In2O3-NiO; mesoporous hollow structure; gas sensor; triethylamine sensing

Funding

  1. National Nature Science Foundation of China [61833006, 61831011]
  2. Jilin Province Science and Technology Development Plan Program [20200301010RQ]
  3. Project on Industrial Innovation Capability of Jilin Province [2020C048]
  4. Fundamental Research Funds for the Central Universities and Graduate Interdisciplinary Research Fund of Jilin University [10183201833]
  5. National Postdoctoral Program for Innovative Talents [BX20200149]
  6. Scientific Research Project of the Education Department of Jilin Province [21 JJKH20211090KJ]

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The study successfully prepared mesoporous In2O3-NiO hollow spheres and demonstrated improved sensing performance by preventing the destruction of Ni-MOF, while also showing good performance in VOC capture.
It remains a challenge to design and fabricate high-performance gas sensors using metal-organic framework (MOF)-derived metal oxide semiconductors (MOS) as sensing materials due to the structural damage during the annealing process. In this study, the mesoporous In2O3-NiO hollow spheres consisting of nanosheets were prepared via a solvothermal reaction and subsequent cation exchange. More importantly, the transformation of Ni-MOF into In/Ni-MOF through exchanging the Ni2+ ion with In' ion can prevent the destruction of the porous reticular skeleton and hierarchical structure of Ni-MOF during calcination. Thus, the mesoporous In2O3-NiO hollow composites possess high porosity and large specific surface area (55.5 m(2) g(-1)), which can produce sufficient permeability pathways for volatile organic compound (VOCs) molecules, maximize the active sites, and enhance the capacity of VOC capture. The mesoporous In2O3-NiO-based sensors exhibit enhanced triethylamine (TEA) sensing performance (S = 33.9-100 ppm) with distinct selectivity, good long-term stability, and lower detection limit (500 ppb) at 200 degrees C. These results can be attributed to the mesoporous hollow hierarchical structure and p-n junction of In2O3-NiO. The preparation concept mentioned in this work may provide a versatile platform applicable to various mesoporous composite sensing material-based hollow structures.

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