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Progress in Chemistry 2009, Vol. 21 Issue (10): 2067-2076 Previous Articles   Next Articles

• Review •

The Combined Adsorption-Photocatalysis for the Removal of Indoor Volatile Organic Compounds

Sun Jian;  Li Xiaohui;  Liu Shouxin*   

  1. (Key Laboratory of Biological Materials of Ministry of Education, Northeast Forestry University, Harbin 150040, China)
  • Received: Revised: Online: Published:
  • Contact: Liu Shouxin E-mail:liushouxin@126.com
  • Supported by:

    National Natural Science Foundation of China

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Adsorption and TiO2 photocatalysis are widely used for the removal of indoor volatile organic compounds (VOCs). However, due to the limited adsorption capacity, saturated absorbent needs further regeneration or be replaced. In addition, the problems of low activity, deactivation and separation for TiO2 photocatalysis restrict its large scale application.For the combined adsorption-photocatalysis composite, TiO2 photocatalysis can realize in-situ regeneration of adsorbent then improve its adsorption capacity. Adsorbent can provide high organic concentration environment for loaded TiO2 photocatalyst, improve photocatalytic activity and retard catalyst deactivation, inhibite the competition adsorption of H2O for active sites. In this paper, recent progress of the combined adsorption-photocatalysis for the removal of indoor VOCs was reviewed. Type of adsorbents, methods of composite preparation and reactors were introduced. Effect of the combination of adsorption and photocatalysis on the structure and photocatalytic properties of TiO2 include surface characteristics, activity and deactivation were systematically investigated.

Contents
1 Introduction
2 Type of adsorbents
2.1 Zeolite
2.2 Activated Carbon
2.3 Silica
2.4 Activated Carbon Fiber
2.5 Carbon nanotubes
3 Effect of the combined adsorption-photocatalysis on the structure and photocatalytic activities of photocatalyst
3.1 Effect of the combined adsorption-photocatalysis on the surface area and interface
3.2 Effect of combined adsorption-photocatalysis on mass transfer
3.3 Effect of combined adsorption-photocatalysis on surface pH
3.4 Effect of the combined adsorption-photocatalysis on the deactivation
3.5 Effect of the combined adsorption-photocatalysis on the side effects of steam
4 The methods of composite preparation
4.1 Physical method
4.2 Chemical method
5 Reactor of the combined adsorption-photocatalysis process
6 Conclusions

CLC Number: 

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