Microfluidic photoelectrocatalytic reactors for water purification with an integrated visible-light source

被引:84
作者
Wang, Ning [1 ,2 ]
Zhang, Xuming [1 ,2 ]
Chen, Bolei [1 ,2 ]
Song, Wuzhou [3 ]
Chan, Ngai Yui [1 ,2 ]
Chan, Helen L. W. [1 ,2 ]
机构
[1] Hong Kong Polytech Univ, Dept Appl Phys, Hong Kong, Hong Kong, Peoples R China
[2] Hong Kong Polytech Univ, Mat Res Ctr, Hong Kong, Hong Kong, Peoples R China
[3] Swiss Fed Inst Technol Lausanne EPFL, Opt Lab LO, Lausanne, Switzerland
关键词
PHOTOCATALYTIC DEGRADATION; SOLAR PHOTOCATALYSIS; METHYLENE-BLUE; FORMIC-ACID; DETOXIFICATION; DYE;
D O I
10.1039/c2lc40428a
中图分类号
Q5 [生物化学];
学科分类号
071010 ; 081704 ;
摘要
This paper reports experimental studies using the photoelectrocatalytic effect to eliminate a fundamental limit of photocatalysis - the recombination of photo-excited electrons and holes. The fabricated reactor has a planar reaction chamber (10 x 10 x 0.1 mm(3)), formed by a blank indium tin oxide glass slide, an epoxy spacer and a BiVO4-coated indium tin oxide glass substrate. A blue light-emitting diode panel (emission area 10 x 10 mm(2)) is mounted on the cover for uniform illumination of the reaction chamber. In the experiment, positive and negative bias potentials were applied across the reaction chamber to suppress the electron/hole recombination and to select either the hole-driven or electron-driven oxidation pathway. The negative bias always exhibits higher performance. It is observed that under -1.8 V the degradation rate is independent of the residence time, showing that the accompanying electrolysis can solve the oxygen deficiency problem. The synergistic effect of photocatalysis and electrocatalysis is observed to reach its maximum under the bias potential of +/- 1.5 V. The photoelectrocatalytic microreactor shows high stability and may be scaled up for high-performance water purification.
引用
收藏
页码:3983 / 3990
页数:8
相关论文
共 33 条
[11]   A review of imperative technologies for wastewater treatment I: oxidation technologies at ambient conditions [J].
Gogate, PR ;
Pandit, AB .
ADVANCES IN ENVIRONMENTAL RESEARCH, 2004, 8 (3-4) :501-551
[12]   Photocatalysis in microreactors [J].
Gorges, R ;
Meyer, S ;
Kreisel, G .
JOURNAL OF PHOTOCHEMISTRY AND PHOTOBIOLOGY A-CHEMISTRY, 2004, 167 (2-3) :95-99
[13]   Photocatalytic reduction of mercury(II) and simultaneous oxidative degradation of surfactants in titanium dioxide suspensions [J].
Hegyi, J ;
Horváth, O .
FROM COLLOIDS TO NANOTECHNOLOGY, 2004, 125 :10-16
[14]   Controlling charge-transfer processes at semiconductor/liquid junctions [J].
Hilal, Hikmat S. ;
Turner, John A. .
ELECTROCHIMICA ACTA, 2006, 51 (28) :6487-6497
[15]   Optofluidic planar reactors for photocatalytic water treatment using solar energy [J].
Lei, Lei ;
Wang, Ning ;
Zhang, X. M. ;
Tai, Qidong ;
Tsai, Din Ping ;
Chan, Helen L. W. .
BIOMICROFLUIDICS, 2010, 4 (04)
[16]   Photoelectrocatalytic degradation of aniline over rutile TiO2/Ti electrode thermally formed at 600 °C [J].
Leng, WH ;
Zhang, Z ;
Zhang, JQ .
JOURNAL OF MOLECULAR CATALYSIS A-CHEMICAL, 2003, 206 (1-2) :239-252
[17]   High surface area titania photocatalytic microfluidic reactors [J].
Lindstrom, Henrik ;
Wootton, Robert ;
Iles, Alexander .
AICHE JOURNAL, 2007, 53 (03) :695-702
[18]   Photochemical reactions and on-line UV detection in microfabricated reactors [J].
Lu, H ;
Schmidt, MA ;
Jensen, KF .
LAB ON A CHIP, 2001, 1 (01) :22-28
[19]   Applied studies in solar photocatalytic detoxification:: an overview [J].
Malato, S ;
Blanco, J ;
Vidal, A ;
Alarcón, D ;
Maldonado, MI ;
Cáceres, J ;
Gernjak, W .
SOLAR ENERGY, 2003, 75 (04) :329-336
[20]   Macro kinetic studies for photocatalytic degradation of benzoic acid in immobilized systems [J].
Mehrotra, K ;
Yablonsky, GS ;
Ray, AK .
CHEMOSPHERE, 2005, 60 (10) :1427-1436