4.8 Article

Amphiphilic Block Copolymer Templated Synthesis of Mesoporous Indium Oxides with Nanosheet-Assembled Pore Walls

Journal

CHEMISTRY OF MATERIALS
Volume 28, Issue 21, Pages 7997-8005

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/acs.chemmater.6b03733

Keywords

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Funding

  1. State Key 973 Program of PRC [2013CB934104]
  2. NSF of China [51372041, 51422202, 21673048, 51402049, 91323304, 51432004, U1463206]
  3. Shu Guang Project of Shanghai Municipal Education Commission [13SG02]
  4. Shanghai Pujiang Program of China [16PJ1401100]
  5. National Youth Top-notch Talent Support Program of China
  6. Program of Introducing Talents of Discipline to Universities [111-2-04]
  7. China Postdoctoral Science Foundation [KLH1615138]
  8. Shanghai Nature Science Foundation of China [14ZR1416600, 15ZR1402000]

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A solvent evaporation induced coassembly approach combined with a comburent CaO2-assisted calcination strategy was employed for the synthesis of ordered mesoporous indium oxides by using lab-made high-molcular weight amphiphilic diblock copolymer poly(ethylene oxide)-b-polystyrene (PEO-b-PS) as a template, indium chloride as an indium source, and THF/ethanol as the solvent. The obtained mesoporous indium oxide materials exhibit a large pore size of similar to 14.5 nm, a surface area of 48 m(2) g(-1), and a highly crystalline In2O3 nanosheets framework, which can facilitate the diffusion and transport of gas molecules. By using an integrated microheater as the chemresistance sensing platform, the obtained mesoporous indium oxides were used as sensing materials and showed an excellent performance toward NO2 at a low working temperature (150 degrees C) due to their high porosity and unique crystalline framework. The limit of detection (LOD) of the microsensor based on mesoporous indium oxides can reach a concentration as low as 50 ppb of NO2. Moreover, the microsensor shows a fast response-recovery dynamics upon contacting NO2 gas and fresh air due to the highly open mesoporous structure and the large mesopores of the crystalline mesoporous In2O3.

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