Bactericidal effects of titanium dioxide-based photocatalysts

被引:105
作者
Coleman, HM
Marquis, CP
Scott, JA
Chin, SS
Amal, R [1 ]
机构
[1] Univ New S Wales, Sch Chem Engn & Ind Chem, Paricles & Catalysis Res Grp, ARC Ctr Funct Nanomat, Sydney, NSW 2052, Australia
[2] Univ New S Wales, Sch Biotechnol & Biomol Sci, Sydney, NSW 2052, Australia
关键词
photocatalysis; E; coli; titanium dioxide; magnetic photocatalyst; hydrothermal photocatalyst; immobilised TiO2; silver deposited TiO2;
D O I
10.1016/j.cej.2005.07.015
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
The photocatalytic degradation of E coli in water by various catalysts was investigated in a batch spiral reactor. Commercial Degussa P25 (P25), as well as novel magnetic and hydrothermally prepared photocatalysts (MPC and HPC) were investigated in a slurry system. P25 was found to be the most effective catalyst, followed by the HPC and the MPC. Cell destructions followed first order kinetics. Non-buffered samples displayed a greater bactericidal efficiency which was attributed to a decrease in electrostatic repulsions between TiO2 and E coli and also elevated stress on E. coli at acidic pH. Buffered (NaHCO3) samples showed a decrease in bactericidal efficiency due to HCO3- ions competing with oxidising species and blocking (by adsorption) the TiO2 particles. The optimum catalyst loading for P25 and HPC was 1 and 2 g/L for MPC and was attributed to mass transfer effects (bulk diffusion, available active site and shadowing). An immobilised P25 system was found to be more efficient than the MPC and comparable with the HPC in suspension. The addition of silver to the immobilised system was found to enhance the photocatalytic degradation. (c) 2005 Elsevier B.V. All rights reserved.
引用
收藏
页码:55 / 63
页数:9
相关论文
共 66 条
[31]   Chlorination by-products in surface water treatment process [J].
Kim, J ;
Chung, Y ;
Shin, D ;
Kim, M ;
Lee, Y ;
Lim, Y ;
Lee, D .
DESALINATION, 2003, 151 (01) :1-9
[32]   PHOTODEGRADATION OF CHLOROFORM AND UREA USING AG-LOADED TITANIUM DIODE AS CATALYST [J].
KONDO, MM ;
JARDIM, WF .
WATER RESEARCH, 1991, 25 (07) :823-827
[33]   Disinfection of surfaces by photocatalytic oxidation with titanium dioxide and UVA light [J].
Kühn, KP ;
Chaberny, IF ;
Massholder, K ;
Stickler, M ;
Benz, VW ;
Sonntag, HG ;
Erdinger, L .
CHEMOSPHERE, 2003, 53 (01) :71-77
[34]   EFFECT OF SILVER ON THE PHOTOCATALYTIC ACTIVITY OF TIO2 [J].
LEE, W ;
SHEN, HS ;
DWIGHT, K ;
WOLD, A .
JOURNAL OF SOLID STATE CHEMISTRY, 1993, 106 (02) :288-294
[35]   Photocatalytic inactivation of Escherichia coli and Lactobacillus helveticus by ZnO and TiO2 activated with ultraviolet light [J].
Liu, HL ;
Yang, TCK .
PROCESS BIOCHEMISTRY, 2003, 39 (04) :475-481
[36]  
MAGRINI KA, 1995, SOLAR ENG, V1, P412
[37]  
Maness PC, 1999, APPL ENVIRON MICROB, V65, P4094
[38]   The photocatalytic disinfection of urban waste waters [J].
Melián, JAH ;
Rodríguez, JMD ;
Suárez, AV ;
Rendón, ET ;
do Campo, CV ;
Arana, J ;
Peña, JP .
CHEMOSPHERE, 2000, 41 (03) :323-327
[39]   Modeling the susceptibility of drinking water utilities to form high concentrations of trihalomethanes [J].
Milot, J ;
Rodriguez, MJ ;
Sérodes, JB .
JOURNAL OF ENVIRONMENTAL MANAGEMENT, 2000, 60 (02) :155-171
[40]   Photocatalytic purification and remediation of contaminated air and water [J].
Ollis, DF .
COMPTES RENDUS DE L ACADEMIE DES SCIENCES SERIE II FASCICULE C-CHIMIE, 2000, 3 (06) :405-411