Hollow porous SnO<SUB>2</SUB> microcubes were obtained through a facile chemical solution route with subsequent calcination and acid-washing process. The process of inducing porosity starts with a crystalline single-phase MnSn(OH)<SUB&g...
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https://www.riss.kr/link?id=A107641528
Huang, J. ; Wang, L. ; Gu, C. ; Shim, J.J.
2014
-
SCI,SCIE,SCOPUS
학술저널
371-374(4쪽)
0
상세조회0
다운로드다국어 초록 (Multilingual Abstract)
Hollow porous SnO<SUB>2</SUB> microcubes were obtained through a facile chemical solution route with subsequent calcination and acid-washing process. The process of inducing porosity starts with a crystalline single-phase MnSn(OH)<SUB&g...
Hollow porous SnO<SUB>2</SUB> microcubes were obtained through a facile chemical solution route with subsequent calcination and acid-washing process. The process of inducing porosity starts with a crystalline single-phase MnSn(OH)<SUB>6</SUB> precursor formed by the co-precipitation of the metal ions from the aqueous solution. Thermal decomposition of the precursors leads to an intimate mixture of Mn<SUB>3</SUB>O<SUB>4</SUB> and porous tetragonal SnO<SUB>2</SUB>. The hollow porous SnO<SUB>2</SUB> microcubes are obtained after a simple acid-washing process. Furthermore, the gas-sensing properties of the hollow porous SnO<SUB>2</SUB> microcubes were investigated in toxic volatile organic compounds, such as formaldehyde, toluene, benzene, methanol, acetone, and ethanol. The detection limits of formaldehyde and toluene were approximately 0.08 and 0.19ppm, respectively, which substantially benefitted from their hollow porous structure and large surface area.
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