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Size dependent dual functionality of CeO2 quantum dots: A correlation among parameters for hydrogen gas sensor and pollutant remediation.
Kaur, Sandeep; Hussain, Sajjad; Park, Jae Young; Katoch, Vibhav; Parkash, Bhanu; Katoch, Akash; Jamwal, Deepika.
Afiliación
  • Rohit; Smart Nanomaterials and Sensor Laboratory, Centre for Nanoscience and Nanotechnology, UIEAST, Panjab University, Chandigarh, 160014, India.
  • Kaur S; Smart Nanomaterials and Sensor Laboratory, Centre for Nanoscience and Nanotechnology, UIEAST, Panjab University, Chandigarh, 160014, India.
  • Hussain S; Smart Nanomaterials and Sensor Laboratory, Centre for Nanoscience and Nanotechnology, UIEAST, Panjab University, Chandigarh, 160014, India.
  • Park JY; Heat & Surface Technology R&D Department, Korea Institute of Industrial Technology, Incheon, 21999, Republic of Korea.
  • Katoch V; Smart Nanomaterials and Sensor Laboratory, Centre for Nanoscience and Nanotechnology, UIEAST, Panjab University, Chandigarh, 160014, India; Microfluidics Research Laboratory, Institute of Nano Science and Technology, Sahibzada Ajit Singh Nagar, Punjab, 140306, India.
  • Parkash B; Microfluidics Research Laboratory, Institute of Nano Science and Technology, Sahibzada Ajit Singh Nagar, Punjab, 140306, India.
  • Katoch A; Smart Nanomaterials and Sensor Laboratory, Centre for Nanoscience and Nanotechnology, UIEAST, Panjab University, Chandigarh, 160014, India. Electronic address: katochakash@gmail.com.
  • Jamwal D; Department Chemistry, University Institute of Sciences, Chandigarh University, Gharuan, Punjab, 140413, India; Sophisticated Analytical Instrumentation Facility (SAIF), Panjab University, Chandigarh, 160014, India. Electronic address: jamwaldeepika@gmail.com.
Chemosphere ; 364: 142959, 2024 Sep.
Article en En | MEDLINE | ID: mdl-39069101
ABSTRACT
The metal oxide-based nanostructures of variable size and shape are found effective in optimizing the gas sensing ability and pollutant degradation. The size induced lattice strain and large band gap in 3nm CeO2 quantum dots evolved the ability towards hydrogen gas sensing and dye degradation compared to nanopebbles and nanoparticles of sizes 15 ± 3, and 30 ± 12 nm. The smaller CeO2 quantum dots than Debye length was found underlying reason for nearly four times sensor response and selectivity towards reducing hydrogen gases than the oxidizing gases at 1-10 ppm level. The lattice strain calculated by Rietveld refinement and W-H analysis was found in-line with the size of CeO2 nanostructures. The enhancement in lattice strain and optical band gap (2.66, 2.78, and 2.89 eV) with decrease in size are found critical for determining the overall efficiency of CeO2 nanostructures for photocatalytic activity, attributed to the strong quantum confinement effect. The higher catalytic activity of 98 % was achieved CeO2 quantum dots in comparison to the 95 % and 94 % obtained for CeO2 nanopebbles and nanoparticles. The impact of change in degradation efficacy and gas sensing ability of different CeO2 nanomaterials is discussed in detail. This work offers a novel and simplistic method to produce CeO2 quantum dots as an efficient sensor for selective detection of H2 gas and photocatalyst. The correlation between size, Debye length, band gap, and lattice strain gives an insight for understanding the underlying detection mechanism for selective detection of reducing gas molecules and efficient pollutant remediation.
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Texto completo: 1 Colección: 01-internacional Base de datos: MEDLINE Asunto principal: Cerio / Puntos Cuánticos / Hidrógeno Idioma: En Revista: Chemosphere Año: 2024 Tipo del documento: Article País de afiliación: India

Texto completo: 1 Colección: 01-internacional Base de datos: MEDLINE Asunto principal: Cerio / Puntos Cuánticos / Hidrógeno Idioma: En Revista: Chemosphere Año: 2024 Tipo del documento: Article País de afiliación: India
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