Solar water disinfection was performed using TiO2 and a Ru(II) complex as fixed catalysts located in a compound parabolic collector photoreactor. Studies were performed in the laboratory as well as at a greenfield site. Under laboratory conditions, natural water contaminated with cultured bacteria was photocatalytically treated and the influence of the photolysis as well as of both catalysts was studied. Experiments were performed with contaminated water flowing at 12 l/min; under these conditions, photocatalytic experiments performed with a supported heterogeneous photocatalyst (Ahlstrom paper impregnated with TiO2) showed it to be effective in degrading bacteria in water. The Ru complex catalyst, however, showed no clear evidence for disinfecting water, and its efficiency was comparable to the simple photolysis. Under on-site experiments, bacteria contaminated water from the Yaurisque river at Cusco, Peru was treated. As a general trend, after photocatalytic treatment a reduction in the E-coli population present in water was observed. Whenever disinfection was achieved in the experiments, no regrowth of bacteria was observed after 24 h. However, a reduction in the prototype efficiency was observed both in laboratory and on-site experiments. This was ascribed to aging of the photocatalyst as well as due to the deposition of particles onto its surface. In cases in which incomplete disinfection resulted, a low rate of E-coli growth was observed 24 h after ending the experiment. However, pseudomones seem to be resistant to the treatment.

1.
1998,
Handbook on Advanced Photochemical Oxidation Processes
,
Center for Environmental Research Information, National Risk Managment Research Laboratory, Office of Research and Development, U.S. Environmental Protection Agency
,
OH
.
2.
Serpone
,
N.
, and
Pellizzetti
,
E.
, 1989,
Photocatalysis: Fundamentals and Applications
,
Wiley
,
New York
.
3.
Helz
,
G. R.
,
Zepp
,
R. G.
, and
Crosby
,
D. G.
, 1994,
Aquatic and Surface Photochemistry
,
CRC
,
Boca Raton
.
4.
2002, “
Project Cost Effective Solar Photocatalytic Technology to Water Decontamination and Disinfection in Rural Areas of Developing Countries
,”
European Commission
, Contract No. ICA4-CT-2002-10001.
5.
Navntoft
,
C.
,
Araujo
,
P.
,
Litter
,
M. I.
,
Apella
,
M. C.
,
Fernandez
,
D.
, and
Puchulu
,
M. E.
,
Hidalgo
,
M. del V.
, and
Blesa
,
M. A.
, 2007, “
Field Tests of the Solar Water Detoxification SOLWATER Reactor in Los Pereyra, Tucuman, Argentina
,”
ASME J. Sol. Energy Eng.
0199-6231,
129
, pp.
127
134
.
6.
Ahlstrom
, 1999, European Patent No. WO9,951,345.
7.
Guillard
,
C.
,
Disdier
,
J.
,
Monnet
,
C.
,
Dussaud
,
J.
,
Malato
,
S.
,
Blanco
,
J.
,
Maldonado
,
M. I.
, and
Herrmann
,
J. -M.
, 2003, “
Solar Efficiency of a New Deposited Titania Photocatalyst: Chlorophenol, Pesticide and Dye Removal Applications
,”
Appl. Catal., B
0926-3373,
46
, pp.
319
332
.
8.
Gumy
,
D.
,
Rincon
,
A. G.
,
Hajdu
,
R.
, and
Pulgarin
,
C.
, 2006, “
Solar Photocatalysis for Detoxification and Disinfection of Water: Different Types of Suspended and Fixed TiO2 Catalysis Study
,”
Sol. Energy
0038-092X,
80
, pp.
1376
1381
.
9.
Garcia-Fresnadillo
,
D.
,
Georgiadou
,
Y.
,
Orellana
,
G.
,
Braun
,
A. M.
, and
Oliveros
,
E.
, 1996, “
Singlet-Oxygen (Δ1g) Production by Ruthenium (II) Complexes Containing Polyazaheterocyclic Ligands in Methanol and in Water
,”
Helv. Chim. Acta
0018-019X,
79
, pp.
1222
1238
.
10.
Jiménez-Hernández
,
M. E.
,
Manjón
,
F.
,
Garcia-Fresnadillo
,
D.
, and
Orellana
,
G.
, 2006, “
Solar Water Disinfection by Singlet Oxygen Photogenerated With Polymer-Supported Ru(II) Sensitizers
,”
Sol. Energy
0038-092X,
80
, pp.
1382
1387
.
11.
Villén
,
L.
,
Manjón
,
F.
,
García-Fresnadillo
,
D.
, and
Orellana
,
G.
, 2006, “
Solar Water Disinfection by Photocatalytic Singlet Oxygen Production in Heterogeneous Medium
,”
Appl. Catal., B
0926-3373,
69
, pp.
1
9
.
12.
Malato Rodriguez
,
S.
,
Blanco Galvez
,
J.
,
Maldonado Rubio
,
M. I.
,
Fernandez Ibañez
,
P.
,
Alarcón Padilla
,
D.
,
Collares Pereira
,
M.
,
Farinha Mendez
,
J.
, and
Correia de Oliveira
,
J.
, 2004, “
Engineering of Solar Photocatalytic Collectors
,”
Sol. Energy
0038-092X,
77
, pp.
513
524
.
13.
Fernandez
,
P.
,
Blanco
,
J.
,
Sichel
,
C.
, and
Malato
,
S.
, 2005, “
Water Disinfection by Solar Photocatalysis Using Compound Parabolic Collectors
,”
Catal. Today
0920-5861,
101
, pp.
345
352
.
14.
Malato
,
S.
,
Blanco
,
J.
,
Richter
,
C.
, and
Maldonado
,
M. I.
, 2000, “
Optimization of Pre-Industrial Solar Photocatalytic Mineralization of Commercial Pesticides: Application to Pesticide Container Recycling
,”
Appl. Catal., B
0926-3373,
25
, pp.
31
38
.
15.
Manjon
,
F.
,
Villen
,
L.
,
Garcia-Fresnadillo
,
D.
, and
Orellana
,
G.
, 2008, “
On the Factors Influencing the Performance of Solar Reactors for Water Disinfection With Photosensitized Singlet Oxygen
,”
Environ. Sci. Technol.
0013-936X,
42
, pp.
301
307
.
16.
2002,
Global Solar UV Index: A Practical Guide
,
World Health Organization
,
Geneva, Switzerland
.
17.
Rincón
,
A. -G.
, and
Pulgarin
,
C.
, 2006, “
Comparative Evaluation of Fe3+ and TiO2 Photoassisted Processes in Solar Photocatalytic Disinfection of Water
,”
Appl. Catal., B
0926-3373,
63
, pp.
222
231
.
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