<?xml version="1.0" encoding="ISO-8859-1"?><article xmlns:mml="http://www.w3.org/1998/Math/MathML" xmlns:xlink="http://www.w3.org/1999/xlink" xmlns:xsi="http://www.w3.org/2001/XMLSchema-instance">
<front>
<journal-meta>
<journal-id>0255-6952</journal-id>
<journal-title><![CDATA[Revista Latinoamericana de Metalurgia y Materiales]]></journal-title>
<abbrev-journal-title><![CDATA[Rev. LatinAm. Met. Mat.]]></abbrev-journal-title>
<issn>0255-6952</issn>
<publisher>
<publisher-name><![CDATA[Universidad Simón Bolívar    ]]></publisher-name>
</publisher>
</journal-meta>
<article-meta>
<article-id>S0255-69522013000200017</article-id>
<title-group>
<article-title xml:lang="en"><![CDATA[Photocatalytic properties evaluation of portland white cement added with TiO2-nanoparticles]]></article-title>
<article-title xml:lang="es"><![CDATA[EVALUACIÓN DE LAS PROPIEDADES FOTOCATALÍTICAS DE CEMENTO PÓRTLAND BLANCO ADICIONADO CON NANOPARTÍCULAS DE DIÓXIDO DE TITANIO]]></article-title>
</title-group>
<contrib-group>
<contrib contrib-type="author">
<name>
<surname><![CDATA[Cárdenas]]></surname>
<given-names><![CDATA[Carolina]]></given-names>
</name>
<xref ref-type="aff" rid="A01"/>
</contrib>
<contrib contrib-type="author">
<name>
<surname><![CDATA[Tobón]]></surname>
<given-names><![CDATA[Jorge]]></given-names>
</name>
<xref ref-type="aff" rid="A02"/>
</contrib>
<contrib contrib-type="author">
<name>
<surname><![CDATA[García]]></surname>
<given-names><![CDATA[Claudia]]></given-names>
</name>
<xref ref-type="aff" rid="A01"/>
</contrib>
</contrib-group>
<aff id="A01">
<institution><![CDATA[,Universidad Nacional de Colombia Grupo de Cerámicos y Vítreos ]]></institution>
<addr-line><![CDATA[Medellín ]]></addr-line>
<country>Colombia</country>
</aff>
<aff id="A02">
<institution><![CDATA[,Universidad Nacional de Colombia Facultad de Minas CEMATCO]]></institution>
<addr-line><![CDATA[Medellín ]]></addr-line>
<country>Colombia</country>
</aff>
<pub-date pub-type="pub">
<day>00</day>
<month>12</month>
<year>2013</year>
</pub-date>
<pub-date pub-type="epub">
<day>00</day>
<month>12</month>
<year>2013</year>
</pub-date>
<volume>33</volume>
<numero>2</numero>
<fpage>316</fpage>
<lpage>322</lpage>
<copyright-statement/>
<copyright-year/>
<self-uri xlink:href="http://ve.scielo.org/scielo.php?script=sci_arttext&amp;pid=S0255-69522013000200017&amp;lng=en&amp;nrm=iso"></self-uri><self-uri xlink:href="http://ve.scielo.org/scielo.php?script=sci_abstract&amp;pid=S0255-69522013000200017&amp;lng=en&amp;nrm=iso"></self-uri><self-uri xlink:href="http://ve.scielo.org/scielo.php?script=sci_pdf&amp;pid=S0255-69522013000200017&amp;lng=en&amp;nrm=iso"></self-uri><abstract abstract-type="short" xml:lang="en"><p><![CDATA[Photocatalytic activity of white Portland cement paste samples, added with 0.5, 1.0 and 3.0% wt of titanium dioxide nanoparticles, was evaluated trough the degradation of Rhodamine B. The degradation was measured by the change of the color coordinates CIE L*a*b* of samples exposed to a UV source and a photocatalytic efficiency coefficient, &#958;, was calculated for two times of curing (65h and 28d). Three ratios of anatase:rutile were used (100:0, 85:15, 50,50) for each percentage of addition. Results showed that samples with the highest photocatalytic activity correspond to 3.0% of anatase at early ages, and 3.0% of anatase:rutile (50:50) at late ages]]></p></abstract>
<abstract abstract-type="short" xml:lang="es"><p><![CDATA[La actividad fotocatalítica de pastas de cemento Pórtland blanco, adicionadas con 0,5%, 1,0% y 3,0% en peso de nanopartículas de dióxido de titanio, fue evaluada a través de la degradación de Rodamina B. La degradación fue medida en función del cambio en las coordenadas de color CIE L*a*b* de las muestras expuestas a un fuente ultravioleta, UV, y un coeficiente fotocatalítico, &#958;, fue calculado para dos edades de curado (65 horas y 28 días). Tres proporciones de anatasa:rutilo fueron empleadas (100:0, 85:15, 50:50) para cada porcentaje de adición. Los resultados mostraron que las muestras con la mayor actividad fotocatalítica correspondieron a un 3,0% de anatasa a edades tempranas y un 3,0% de anatasa:rutilo (50:50) a edades tardías]]></p></abstract>
<kwd-group>
<kwd lng="en"><![CDATA[Photocatalysis]]></kwd>
<kwd lng="en"><![CDATA[Nanoparticles of TiO2]]></kwd>
<kwd lng="en"><![CDATA[Portland Cement]]></kwd>
<kwd lng="es"><![CDATA[Fotocatálisis]]></kwd>
<kwd lng="es"><![CDATA[Nanopartículas de TiO2]]></kwd>
<kwd lng="es"><![CDATA[Cemento Pórtland]]></kwd>
</kwd-group>
</article-meta>
</front><body><![CDATA[   <font FACE="Verdana">     <p align="center"> <span lang="EN-US" style="font-family: Verdana; font-weight: 700">Photocatalytic  properties evaluation of portland white cement added with TiO<sub>2</sub>-nanoparticles</span></p> </font><font FACE="Verdana" SIZE="2">     <p ALIGN="center"><b>Carolina Cárdenas <sup>1*</sup>, Jorge Tobón <sup>2</sup>,  Claudia García <sup>1</sup></b></p>     <p ALIGN="justify"><sup>1 </sup>Grupo de Cerámicos y Vítreos, Universidad  Nacional de Colombia, Calle 59A # 63-20, Medellín, Colombia<i>.</p> </i>     <p ALIGN="justify"><sup>2</sup> Grupo del Cemento y Materiales de Construcción,  CEMATCO, Facultad de Minas, Universidad Nacional de Colombia, Calle 75 # 79A –  51, Medellín, Colombia</font><font SIZE="2" face="Verdana"><i>.</p>     <p align="justify">*e-mail: <a href="mailto:ccardenr@unal.edu.co"> ccardenr@unal.edu.co</a> </p> </i>     <p align="justify"><b>ABSTRACT</b></p>     <p align="justify">Photocatalytic activity of white Portland cement paste  samples, added with 0.5, 1.0 and 3.0% wt of titanium dioxide nanoparticles, was  evaluated trough the degradation of Rhodamine B. The degradation was measured by  the change of the color coordinates CIE L*a*b* of samples exposed to a UV source  and a photocatalytic efficiency coefficient, &#958;, was calculated for two times of  curing (65h and 28d). Three ratios of anatase:rutile were used (100:0, 85:15,  50,50) for each percentage of addition. Results showed that samples with the  highest photocatalytic activity correspond to 3.0% of anatase at early ages, and  3.0% of anatase:rutile (50:50) at late ages.</p>     <p align="justify"><b>Keywords:</b> Photocatalysis, Nanoparticles of TiO2,  Portland Cement.</p>     <p align="center"><b>EVALUACIÓN DE LAS PROPIEDADES FOTOCATALÍTICAS DE CEMENTO  PÓRTLAND BLANCO ADICIONADO CON NANOPARTÍCULAS DE DIÓXIDO DE TITANIO</b></p>     ]]></body>
<body><![CDATA[<p align="justify"><b>RESUMEN</b></p>     <p align="justify">La actividad fotocatalítica de pastas de cemento Pórtland  blanco, adicionadas con 0,5%, 1,0% y 3,0% en peso de nanopartículas de dióxido  de titanio, fue evaluada a través de la degradación de Rodamina B. La  degradación fue medida en función del cambio en las coordenadas de color CIE  L*a*b* de las muestras expuestas a un fuente ultravioleta, UV, y un coeficiente  fotocatalítico, &#958;, fue calculado para dos edades de curado (65 horas y 28 días).  Tres proporciones de anatasa:rutilo fueron empleadas (100:0, 85:15, 50:50) para  cada porcentaje de adición. Los resultados mostraron que las muestras con la  mayor actividad fotocatalítica correspondieron a un 3,0% de anatasa a edades  tempranas y un 3,0% de anatasa:rutilo (50:50) a edades tardías.</p>     <p align="justify"><b>Palabras Claves:</b> Fotocatálisis, Nanopartículas de TiO<sub>2</sub>,  Cemento Pórtland.</p><b>     <p ALIGN="LEFT">Recibido: </b>20-02-2012&nbsp; <b>Aceptado: </b>02-10-2012</p> </font>     <p align="justify"><b><font face="Verdana" size="2">1. INTRODUCTION</font></b></p>     <p align="justify"><font face="Verdana" size="2">Catalysis under radiation,  called photocatalysis, is an area of great interest in basic science, with many  environmental applications such as the reduction of harmful pollutants found in  the air and in the water [1] and the self-cleaning applications useful in the  construction industry. The air pollution (NOx, SOx, CO<sub>2</sub>, VOCs) caused  by road traffic and industry is one of the major problems in urban areas [2]  that can be reduced using the photocatalytic phenomena occurring on the surface  of some semiconductors such as TiO<sub>2</sub>, ZnO, CdS, Fe<sub>2</sub>O<sub>3 </sub>and WO<sub>3</sub>. A photocatalyst is characterized by its capability to  adsorb simultaneously two reactants, which can be reduced and oxidized by a  photonic activation through an efficient absorption (h</font><span lang="EN-US">&#957;</span><font face="Verdana" size="2">  &#8805; E<sub>g</sub>). The ability of a semiconductor to undergo photoinduced  electron transfer to an adsorbed particle is determined by the band energy  positions of the semiconductor and the redox potential of the adsorbates. The  energy level at the bottom of conduction band is the reduction potential of  photoelectrons. The energy level at the top of valence band determines the  oxidizing ability of photoholes, and its value reflects the ability of the  system to promote reductions and oxidations [3].</font></p>     <p align="justify"><font face="Verdana" size="2">Worldwide, photocatalysts have  been used in ceramic tiles [4], glass [5], concrete [6], gypsum, roofing tiles,  sealers and blends of cements [7-9] to create composites with self-cleaning,  decontaminating and anti-bacterial properties. In Colombia, the application of  photocatalysts in industry has been poorly studied and, therefore, its  investigation is needed.</font></p>     <p align="justify"><font face="Verdana" size="2">Titanium dioxide appears to be  the most suitable semiconducting material for use in photocatalysis due to its  chemical stability, non-toxicity and, relatively low cost in comparison with  other semiconductor metal oxides. In nature, the TiO<sub>2</sub> can be found in  three crystalline forms named rutile (tetragonal), anatase (tetragonal) and  brookite (orthorhombic). Their structures can be discussed in terms of </font> <font FACE="Times-Roman" SIZE="3">(</font><font face="Verdana" size="2">TiO<sup>6-</sup><sub>2</sub></font><font FACE="CambriaMath" LANG="JA" SIZE="1"> </font><font FACE="Times-Roman" SIZE="3">)</font><font face="Verdana" size="2">  octahedrals. The three crystal structures differ in the distortion of each  octahedral and by the assembly patterns of the octahedral chains.</font></p>     <p align="justify"><font face="Verdana" size="2">Anatase can be regarded to be  built-up from octahedrals that are connected by their vertices, meanwhile in  rutile, the edges are connected, and in brookite both vertices and edges are  connected [3]. The differences in lattice structure of anatase and rutile cause  different densities and electronic band structures leading to different band  gaps, 3.20 eV for anatase and 3,02 eV for rutile; therefore, the absorption  thresholds correspond to 388 nm and 411 nm of wavelength, respectively.  According to this, it is necessary an UV-A light source to excite the electrons  from the valence band to the conduction band and begin with the redox reactions.  In presence of oxygen and water, the reactions taking place on the surface of  the TiO<sub>2</sub> are:</font></p>     <p align="center"> <img border="0" src="/img/fbpe/rlmm/v33n2/art17for1,2,3.jpg" width="357" height="93" align="center"></p>     
]]></body>
<body><![CDATA[<p align="justify"><font face="Verdana" size="2">The holes mediate the oxidation  of organic compounds by the formation of hydroxyl radicals, and the electrons  mediate reduction and oxidation reactions by the formation of superoxide  radicals [10].</font></p>     <p align="justify"><font face="Verdana" size="2">Among the greatest difficulties  in developing nano- TiO<sub>2</sub> cement materials is the lack of information  about the variables that must be controlled, such as the percentage of addition  of nanoparticles in cement, the optimum level of mineralogical phases present in  the titanium dioxide, the form of dispersion in the substrate and the  appropriate means to characterize the photocatalytic properties. The existing  legislation is very recent, and is still under discussion by the scientific  community.</font></p>     <p align="justify"><font face="Verdana" size="2">This paper proposes a  methodology for evaluating the photocatalytic properties of cement pastes, with  0.5, 1.0 and 3.0% of titanium dioxide nanoparticles, at different times of  curing (65h and 28d) by the measure of color change that results from the  degradation of the organic dye Rhodamine B under UV exposure.</font></p>     <p align="justify"><b><font face="Verdana" size="2">2. EXPERIMENTAL PART</font></b></p>     <p align="justify"><b><font face="Verdana" size="2">2.1 Materials</font></b></p>     <p align="justify"><font face="Verdana" size="2">The cement paste samples were  prepared using Colombian Portland white cement (Argos, Colombia). The dye that  was used was Rhodamine B (Industria Química Andina S.A, Colombia) and three  commercial titania samples were chosen: TiO2 anatase (Nabond, China), TiO<sub>2</sub>  rutile (Nabond, China) and Aeroxide P25 (Evonik-Degussa, Germany). The content  of anatase and rutile phases in TiO2 powders were determined by X-ray  diffraction spectroscopy (XRD, Philips, X’Pert).</font></p>     <p align="justify"><font face="Verdana" size="2">The degradation process of dyes  (methylene blue, rhodamine B, methyl green, acid orange) as a measure of  photocatalytic efficiency of semiconducting materials is still a subject of  discussion as these substances show, in some extent, a low resistance to UV  light by themselves [14]; however, they are commonly used as model pollutants,  partly because its change under UV exposure can be easily followed using  spectrometry or spectrophotometry. Rhodamine B has been chosen because it is  highly soluble in water, it has a low sensitivity to the alkalinity of  cementicious materials [8] and its chemical structure is related to polycylic  aromatic hydrocarbons, which are some of the pollutants agents found in urban  environments.</font></p>     <p align="justify"><font face="Verdana" size="2">Aqueous suspensions of titania  were made using a dispersion agent, based on modified polycarboxylate polymer.  In order to prove the stability and the degree of dispersion of the  nanoparticles in the suspension, zeta potential measurements were carried out  with a Zetasizer Nano (Malvern Instruments) as follows: 1 ml of the suspension,  prepared as indicated in Section 2.2, was diluted in 80 ml of deionized water,  then the measurement was performed at the given pH value (c.a 8); and a second  measurement was performed at a higher pH value (c.a 12), simulating the alkaline  media of the cement. The rise of the pH was achieved by the addition of a 3% wt  solution of NaOH.</font></p>     <p align="justify"><b><font face="Verdana" size="2">2.2 Preparation and  evaluation of the samples</font></b></p>     <p align="justify"><font face="Verdana" size="2">In <a href="#tab1">Table 1</a>,  it is shown the experimental studied compositions used in this work. For each  sample, 4 disc-shaped specimens of cement paste were made (2.8 cm in diameter  and 0.5 cm thick), with a water /cement ratio of 0.5. The rhodamine B was  incorporated into the mixing water (concentration of 0.5 g/l) and then the  titanium dioxide and the dispersing agent (19% wt respect to TiO<sub>2</sub>)  were added to this solution. They were mixed in a Heidolph 900 Diax rotor-stator  mixer for 4 minutes; this dispersion was added to the cement and manually mixed.</font></p> <font FACE="Verdana" SIZE="2" COLOR="#c10000"><b>     ]]></body>
<body><![CDATA[<p align="center"><a name="tab1">Table 1.</a> </b></font> <font FACE="Verdana" SIZE="2">Studied compositions.</font></p>     <p align="center"><font FACE="Verdana" SIZE="2"> <img border="0" src="/img/fbpe/rlmm/v33n2/art17tab1.jpg" width="272" height="255" align="center"></p>     
<p ALIGN="center">*Percentages of addition are considered with respect to cement  weight</p> </font>     <p align="justify"><font face="Verdana" size="2">After being formed, the disc-shaped  specimens were cured during 24 hours in a moist environment, and they were  stored in dark until the age of measurement, 65 hours or 28 days. The used  nomenclature will be: &quot;Anatase&quot; for the sample with 100% pure anatase, &quot;P25&quot; for  the samples with a proportion 85:15, anatase:rutile; and &quot;Ana+Rut&quot; for the  samples with a proportion 50:50, anatase:rutile.</font></p>     <p align="justify"><font face="Verdana" size="2">A laboratory experimental setup  was designed to evaluate the photocatalytic activity, as shown in <a href="#fig1">Figure 1</a>. The assembly consists of a UV lamp with a spectrum  between 320nm and 410nm, which passes through a Fresnel lens collimator which  collimates and filters the spectrum below 370nm. The intensity of the UV source  in the position where the specimens are to be irradiated was 1.18 W/m<sup>2</sup>.  The use of this UV source corresponds to the facilities given in our laboratory;  despite this irradiance is about 10 times lower than suggested in the standards.</font></p>     <p align="center"><a name="fig1"> <img border="0" src="/img/fbpe/rlmm/v33n2/art17fig1.jpg" width="347" height="194" align="center"></a></p> <font FACE="Verdana" SIZE="2" COLOR="#c10000"><b>     
<p ALIGN="center">Figure 1. </b></font><font FACE="Verdana" SIZE="2">Morphology  of TiO2 powders was examined by using a transmission electron microscope (TEM,  FEI TECNAI 20 Twin), and the cement pastes with TiO2 were examined with a field  emission scanning electron microscope, (FE-SEM, HITACHI S-4800).</p> </font>     <p align="justify"><font face="Verdana" size="2">After 65 hours and 28 days, the  samples were exposed to an UV source for 6 hours and the photocatalytic activity  was determined by the degradation of rhodamine B with time which is evidenced by  a change in color. Samples were light red at the beginning of the test, but  after the UV exposure they showed a tendency to turn white, due to the  photocatalytic degradation of the dye. Therefore, colorimetric measurements in  the color space L*a*b* [11] given by CIE (Commission Internationale de  l’Éclairage) were performed in a spectrophotometer Ocean Optics 2000.</font></p>     <p align="justify"><font face="Verdana" size="2">Morphology of TiO2 powders was  examined by using a transmission electron microscope (TEM, FEI TECNAI 20 Twin),  and the cement pastes with TiO2 were examined with a field emission scanning  electron microscope, (FE-SEM, HITACHI S-4800).</font></p>     <p align="justify"><b><font face="Verdana" size="2">3. RESULTS AND DISCUSION</font></b></p>     ]]></body>
<body><![CDATA[<p align="justify"><font face="Verdana" size="2">The characteristics of the  applied titanium dioxides are summarized in <a href="#tab2">Table 2</a>. The  different particle characteristics are expected to give different photocatalytic  efficiencies due to the size of the crystals and the synergism between the  anatase and rutile phases [12]. However, the precise reasons for differing  activities have not been elucidated in detail [13].</font></p> <font FACE="Verdana" SIZE="2" COLOR="#c10000"><b>     <p align="center"><a name="tab2">Table 2.</a></b></font><font FACE="Verdana" SIZE="2">  Characteristics of the used titanium oxide</font></p>     <p align="center"><font FACE="Verdana" SIZE="2"> <img border="0" src="/img/fbpe/rlmm/v33n2/art17tab2.jpg" width="370" height="145" align="center"></p>     
<p ALIGN="center">*Estimated by XRD measurements</p>     <p align="center">**According to manufacturers’ specifications</p> </font>     <p align="justify"><font face="Verdana" size="2">The TEM images (<a href="#fig2">Figure  2</a>) showed pure rutile particles from about 40-60nm, hexagonally shaped; pure  anatase particles from about 20nm, showed hexagonally rounded shaped and P25  particles seem to have two different sizes depending on the present phases, for  anatase phase the particle size was about 20nm, while for rutile phase was about  60nm and the morphology of each phase in P25 particles was the same as for the  pure phases indicated above.</font></p>     <p align="center"><a name="fig2"> <img border="0" src="/img/fbpe/rlmm/v33n2/art17fig2.jpg" width="537" height="225" align="center"></a></p> <font FACE="Verdana" SIZE="2" COLOR="#c10000"><b>     
<p align="center">Figure 2. </b></font><font FACE="Verdana" SIZE="2">TEM images  for TiO2 powders: a) Rutile, b) Anatase, c) P25.</p> </font>     <p align="justify"><font face="Verdana" size="2">Zeta potential results are  shown in <a href="#fig3">Figure 3</a>. The magnitude of the zeta potential gives  an indication of the potential stability of the colloidal system. If all  particles in suspension have a large negative or positive zeta potential, then  they will tend to repel each other and there is no tendency to flocculate. In  general it is accepted that suspensions with values greater than 30mV o lower  than -30mV are normally considered stable. From the results of these tests we  can conclude that all of the TiO2 suspensions were stable, even in alkaline  cementlike pH. This implies that the nanoparticles were well dispersed  throughout the cement paste, result that was confirmed with SEM and TEM images  (figures do not showed).</font></p>     <p align="center"><a name="fig3"> <img border="0" src="/img/fbpe/rlmm/v33n2/art17fig3.jpg" width="337" height="214" align="center"></a></p> <font FACE="Verdana" SIZE="2" COLOR="#c10000"><b>     
]]></body>
<body><![CDATA[<p ALIGN="center">Figure 3. </b></font><font SIZE="2" face="Verdana">Zeta  potential measurements at different pH for Anatase, P25 and Ana+Rut.</p> </font>     <p align="justify"><font face="Verdana" size="2"><a href="#fig4">Figure 4</a>  presents the changes in color for two ageing times: 65 hours and 28 days. <a href="#fig4">Figure 4.a)</a>, 4.b) and 4.c) correspond to samples added with  P25, Anatase and Ana+Rut, respectively. Only &#916;a * data will be presented since  coordinate a* indicates the change in the red coloration, measured as the  difference between two points, corresponding to the initial color of the sample  at t=0 and the color at time t, as follows [11]:</font></p>     <p align="center"> <img border="0" src="/img/fbpe/rlmm/v33n2/art17for4.jpg" width="361" height="29" align="center"></p>     
<p align="center"><a name="fig4"> <img border="0" src="/img/fbpe/rlmm/v33n2/art17fig4.jpg" width="572" height="560" align="center"></a></p> <font FACE="Verdana" SIZE="2" COLOR="#c10000"><b>     
<p ALIGN="center">Figure 4. </b></font><font SIZE="2" face="Verdana">Change in  coordinate a* during exposition to UV radiation for reference sample and samples  containing 3,0%, 1,0%, 0,5% of <b>a) </b>P25, <b>b) </b>Anatase and <b>c) </b> Ana+Rut. Results are presented for two ageing times: 65 hours (left column) and  28 days (right column).</p> </font>     <p align="justify"><font face="Verdana" size="2">Results are compared against a  reference cement paste sample, TiO<sub>2</sub>-free, in order to avoid  misinterpretation of the analysis of the catalytic efficiency due to the extent  of decomposition of rodhamine under UV. For samples measured at 65 hours and 28  days of fabrication, it can be observed that all of them suffer a drastic change  in color during the first 50 minutes of UV exposure, even the reference sample;  this could be explained by the fact that, after a while, the samples may be  saturated with the decomposition products of the rodhamine and, since there is  no presence of water or another vehicle for them to be evacuated, the products  remain adsorbed and they slow down the photocatalytic degradation of the dye.</font></p>     <p align="justify"><font face="Verdana" size="2">In <a href="#fig4">Figure 4</a>,  positive &#916;a<sup>*</sup> values imply that the red coloration at the initial  time, t=0, was stronger than the red coloration at the final time of measurement.  At 65h, samples containing 3,0% of TiO<sub>2</sub>, except for the Ana+Rut,  presented the greatest change in color compared with the other addition  percentages. This was expected since there were a lot of more catalytic  particles on the surface of the samples that increased rodhamine degradation. In  the case of Ana+Rut samples, it seems that the change in a* was similar for all  addition percentages.</font></p>     <p align="justify"><font face="Verdana" size="2">In order to quantify the change  in color, a photocatalytic efficiency coefficient, &#958;, was calculated as follows:</font></p>     <p align="center"> <img border="0" src="/img/fbpe/rlmm/v33n2/art17for5.jpg" width="368" height="57" align="center"></p>     
<p align="justify"><font face="Verdana" size="2">Being A(a0<sup>*</sup>),  Equation 6, the area of the rectangle having a length equal to t<sub>f</sub>,  time at the end of the UV exposure, and a height equal to a0<sup>*</sup>. This  area can be considered as an ideal region where the sample undergoes no color  change, since a* doesn’t change with time. Also, we considered A(a<sup>*</sup>)  Equation 7, the area under the real curve of a* as it changes with time.</font></p>     ]]></body>
<body><![CDATA[<p align="center"> <img border="0" src="/img/fbpe/rlmm/v33n2/art17for6,7.jpg" width="363" height="63" align="center"></p>     
<p align="justify"><font face="Verdana" size="2">The photocatalytic efficiency  coefficients for all samples are shown in <a href="#fig5">Figure 5</a> at 65h  and 28d.</font></p>     <p align="center"><a name="fig5"> <img border="0" src="/img/fbpe/rlmm/v33n2/art17fig5.jpg" width="339" height="412" align="center"></a></p> <font FACE="Verdana" SIZE="2" COLOR="#c10000"><b>     
<p ALIGN="center">Figure 5. </b></font><font SIZE="2" face="Verdana"> Photocatalytic efficiency coefficients at 65 hours and 28 days of curing.</p> </font>     <p align="justify"><font face="Verdana" size="2">According to these results, we  can see that, at 65h, pure anatase seems to be the best catalyst when a 3,0% is  incorporated into the cement matrix, followed by 3% of P25. At late ages, an  interesting behavior arises from the coefficients of the Ana+Rut samples which  showed an increment in the photocatalytic activity. This could be explained by  the fact that there is a synergic effect between the anatase phase and the  rutile phase of the titanium dioxide that leads to a slower recombination  phenomenum of electron and holes in the semiconductor, allowing a more prolonged  time to create the reactive radicals that finally will decompose the organic dye,  or any organic compound adsorbed on the catalyst. The photocatalytic activity is  being influenced by the ageing of the samples and a loss of catalytic activity  is evidenced at 28 days for all sample measurements. Few authors [9] have  studied the influence of ageing in the photocatalytic activity, concluding that  carbonation of the TiO<sub>2</sub>-modified cements leads to a very pronounced  loss in catalytic efficiency during several months. The formation of calcite,  formed from the environmental CO<sub>2</sub> and the cement calcium, which would  cover and block much of the cement surface could result in a reduction of  specific surface area (smaller amount of active sites) and a decrease in the  sample’s adsorption (smaller amounts of organic compounds can be adsorbed by the  cement). Nevertheless, it exists, in some extent, the degradation of organic  compounds when the results are compared with the color parameters of the samples  with no TiO<sub>2</sub>. The presence of calcite or any other carbonate formed  on the cement surface must be proved in future works.</font></p> <font SIZE="2" face="Verdana">     <p align="justify"><b>4. CONCLUSIONS</b></p>     <p align="justify">The addition of titanium dioxide nanoparticles conferred to  the cement pastes the property of degrade organic compounds, therefore, this  photocatalyst-modified cements can be used to design construction materials  friendly with the enviroment which break down pollutants.</p>     <p align="justify">The experimental set up used in this work seems to be a good  choice to characterize the photocatalytic properties of any material that wanted  to be measured.</p>     <p align="justify">In spite that the employed irradiancy was of low intensity  (1.8W/m<sup>2</sup>) compared which those used in the standard regulation  (10-20W/m2) it can be noticed a change in color of the cement paste samples due  to photocatalysis. This implies that the photocatalysis reactions can be  achieved even under low irradiance conditions.</p>     <p align="justify">At early ages, the more efficient addition in the degradation  of rhodamine B was the anatase while for older ages, the 50:50 ratio of  anatase:rutile presented the higher photocatalytic activity. This could be  explained because the smaller particle size of anatase makes it more active than  the rutile as long as no other phenomena occur like carbonation or cement  hydration. When this happens, at older ages, the synergy between the two phases  seems to be more efficient against those phenomena.</p>     ]]></body>
<body><![CDATA[<p align="justify"><b>5. REFERENCIAS</b></p>     <!-- ref --><p align="justify">1. Fujishima A, Zhang X, Tryk D. International Journal of  Hydrogen Energy. 2007; 32: 2664- 2672.&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;[&#160;<a href="javascript:void(0);" onclick="javascript: window.open('/scielo.php?script=sci_nlinks&ref=2296275&pid=S0255-6952201300020001700001&lng=','','width=640,height=500,resizable=yes,scrollbars=1,menubar=yes,');">Links</a>&#160;]<!-- end-ref --><!-- ref --><p align="justify">2. Hüsken G, Hunger M, Brouwers H.J. Building and Enviroment.  2009; 44: 2463-2474.&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;[&#160;<a href="javascript:void(0);" onclick="javascript: window.open('/scielo.php?script=sci_nlinks&ref=2296276&pid=S0255-6952201300020001700002&lng=','','width=640,height=500,resizable=yes,scrollbars=1,menubar=yes,');">Links</a>&#160;]<!-- end-ref --><!-- ref --><p align="justify">3. Carp O, Huisman C.L, Reller A. Progress in solid state  chemistry. 2004; 32: 33-177.&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;[&#160;<a href="javascript:void(0);" onclick="javascript: window.open('/scielo.php?script=sci_nlinks&ref=2296277&pid=S0255-6952201300020001700003&lng=','','width=640,height=500,resizable=yes,scrollbars=1,menubar=yes,');">Links</a>&#160;]<!-- end-ref --><!-- ref --><p align="justify">4. Bordes M.C, Moreno A, Bou E, Sanz V. Boletin de la  Sociedad Española de Cerámica y Vidrio. 2007; 46: 273-279.&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;[&#160;<a href="javascript:void(0);" onclick="javascript: window.open('/scielo.php?script=sci_nlinks&ref=2296278&pid=S0255-6952201300020001700004&lng=','','width=640,height=500,resizable=yes,scrollbars=1,menubar=yes,');">Links</a>&#160;]<!-- end-ref --><!-- ref --><p align="justify">5. Watanabe T, Nakajima A, Wang R, Minabe M, Koizumi S,  Fujishima A, Hashimoto K. Thin Solid Films. 1999; 351: 260-263.&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;[&#160;<a href="javascript:void(0);" onclick="javascript: window.open('/scielo.php?script=sci_nlinks&ref=2296279&pid=S0255-6952201300020001700005&lng=','','width=640,height=500,resizable=yes,scrollbars=1,menubar=yes,');">Links</a>&#160;]<!-- end-ref --><!-- ref --><p align="justify">6. Hassan M.M, Dylla H, Mohammad L.M, Rupnow T. Construction  and building materials. 2010; 24: 1456-1461.&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;[&#160;<a href="javascript:void(0);" onclick="javascript: window.open('/scielo.php?script=sci_nlinks&ref=2296280&pid=S0255-6952201300020001700006&lng=','','width=640,height=500,resizable=yes,scrollbars=1,menubar=yes,');">Links</a>&#160;]<!-- end-ref --><!-- ref --><p align="justify">7. Tobón J. I, Restrepo O. J, Payá J. J. Dyna. 2007; 74  (152): 277-291.&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;[&#160;<a href="javascript:void(0);" onclick="javascript: window.open('/scielo.php?script=sci_nlinks&ref=2296281&pid=S0255-6952201300020001700007&lng=','','width=640,height=500,resizable=yes,scrollbars=1,menubar=yes,');">Links</a>&#160;]<!-- end-ref --><!-- ref --><p align="justify">8. Ruot B, Plassais A, Olive F, Guillot L, Bona L. Solar  Energy. 2009; 83: 1794-1801.&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;[&#160;<a href="javascript:void(0);" onclick="javascript: window.open('/scielo.php?script=sci_nlinks&ref=2296282&pid=S0255-6952201300020001700008&lng=','','width=640,height=500,resizable=yes,scrollbars=1,menubar=yes,');">Links</a>&#160;]<!-- end-ref --><!-- ref --><p align="justify">9. Lackhoff M, Prieto X, Nestle N, Dehn F, Niessner R.  Applied Catalysis B: Environmental. 2003; 43: 205–216.&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;[&#160;<a href="javascript:void(0);" onclick="javascript: window.open('/scielo.php?script=sci_nlinks&ref=2296283&pid=S0255-6952201300020001700009&lng=','','width=640,height=500,resizable=yes,scrollbars=1,menubar=yes,');">Links</a>&#160;]<!-- end-ref --><!-- ref --><p align="justify">10. Vinu R, Madras G. Journal of the Indian Institute of  Science. 2010; 90: 189-230.&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;[&#160;<a href="javascript:void(0);" onclick="javascript: window.open('/scielo.php?script=sci_nlinks&ref=2296284&pid=S0255-6952201300020001700010&lng=','','width=640,height=500,resizable=yes,scrollbars=1,menubar=yes,');">Links</a>&#160;]<!-- end-ref --><!-- ref --><p align="justify">11. Billmeyer F. W, Saltzman M. Principles of Color  Technology, Second Ed. John Wiley &amp; sons (Canada), 1981, Cap 1-2.&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;[&#160;<a href="javascript:void(0);" onclick="javascript: window.open('/scielo.php?script=sci_nlinks&ref=2296285&pid=S0255-6952201300020001700011&lng=','','width=640,height=500,resizable=yes,scrollbars=1,menubar=yes,');">Links</a>&#160;]<!-- end-ref --><!-- ref --><p align="justify">12. Ohno T, Tokieda K, Higashida S, Matsumura M. Applied  Catalysis A: General. 2003; 244: 383- 391.&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;[&#160;<a href="javascript:void(0);" onclick="javascript: window.open('/scielo.php?script=sci_nlinks&ref=2296286&pid=S0255-6952201300020001700012&lng=','','width=640,height=500,resizable=yes,scrollbars=1,menubar=yes,');">Links</a>&#160;]<!-- end-ref --><!-- ref --><p align="justify">13. Fujishima A, Zhang X, Tryk D. A. Surface Science Reports.  2008; 63: 515-582.&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;[&#160;<a href="javascript:void(0);" onclick="javascript: window.open('/scielo.php?script=sci_nlinks&ref=2296287&pid=S0255-6952201300020001700013&lng=','','width=640,height=500,resizable=yes,scrollbars=1,menubar=yes,');">Links</a>&#160;]<!-- end-ref --><!-- ref --><p align="justify">15. Yan X, Ohno T, Nishijima K, Abe R, Ohtani B. Chemical  Physics letters. 2006; 429: 606-610.&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;[&#160;<a href="javascript:void(0);" onclick="javascript: window.open('/scielo.php?script=sci_nlinks&ref=2296288&pid=S0255-6952201300020001700014&lng=','','width=640,height=500,resizable=yes,scrollbars=1,menubar=yes,');">Links</a>&#160;]<!-- end-ref --> ]]></body>
<back>
<ref-list>
<ref id="B1">
<label>1</label><nlm-citation citation-type="journal">
<person-group person-group-type="author">
<name>
<surname><![CDATA[Fujishima]]></surname>
<given-names><![CDATA[A]]></given-names>
</name>
<name>
<surname><![CDATA[Zhang]]></surname>
<given-names><![CDATA[X]]></given-names>
</name>
<name>
<surname><![CDATA[Tryk]]></surname>
<given-names><![CDATA[D]]></given-names>
</name>
</person-group>
<source><![CDATA[International Journal of Hydrogen Energy]]></source>
<year>2007</year>
<volume>32</volume>
<page-range>2664- 2672</page-range></nlm-citation>
</ref>
<ref id="B2">
<label>2</label><nlm-citation citation-type="journal">
<person-group person-group-type="author">
<name>
<surname><![CDATA[Hüsken]]></surname>
<given-names><![CDATA[G]]></given-names>
</name>
<name>
<surname><![CDATA[Hunger]]></surname>
<given-names><![CDATA[M]]></given-names>
</name>
<name>
<surname><![CDATA[Brouwers]]></surname>
<given-names><![CDATA[H.J]]></given-names>
</name>
</person-group>
<source><![CDATA[Building and Enviroment]]></source>
<year>2009</year>
<volume>44</volume>
<page-range>2463-2474</page-range></nlm-citation>
</ref>
<ref id="B3">
<label>3</label><nlm-citation citation-type="journal">
<person-group person-group-type="author">
<name>
<surname><![CDATA[Carp]]></surname>
<given-names><![CDATA[O]]></given-names>
</name>
<name>
<surname><![CDATA[Huisman]]></surname>
<given-names><![CDATA[C.L]]></given-names>
</name>
<name>
<surname><![CDATA[Reller]]></surname>
<given-names><![CDATA[A]]></given-names>
</name>
</person-group>
<source><![CDATA[Progress in solid state chemistry]]></source>
<year>2004</year>
<volume>32</volume>
<page-range>33-177</page-range></nlm-citation>
</ref>
<ref id="B4">
<label>4</label><nlm-citation citation-type="journal">
<person-group person-group-type="author">
<name>
<surname><![CDATA[Bordes]]></surname>
<given-names><![CDATA[M.C]]></given-names>
</name>
<name>
<surname><![CDATA[Moreno]]></surname>
<given-names><![CDATA[A]]></given-names>
</name>
<name>
<surname><![CDATA[Bou]]></surname>
<given-names><![CDATA[E]]></given-names>
</name>
<name>
<surname><![CDATA[Sanz]]></surname>
<given-names><![CDATA[V]]></given-names>
</name>
</person-group>
<source><![CDATA[Boletin de la Sociedad Española de Cerámica y Vidrio]]></source>
<year>2007</year>
<volume>46</volume>
<page-range>273-279</page-range></nlm-citation>
</ref>
<ref id="B5">
<label>5</label><nlm-citation citation-type="journal">
<person-group person-group-type="author">
<name>
<surname><![CDATA[Watanabe]]></surname>
<given-names><![CDATA[T]]></given-names>
</name>
<name>
<surname><![CDATA[Nakajima]]></surname>
<given-names><![CDATA[A]]></given-names>
</name>
<name>
<surname><![CDATA[Wang]]></surname>
<given-names><![CDATA[R]]></given-names>
</name>
<name>
<surname><![CDATA[Minabe]]></surname>
<given-names><![CDATA[M]]></given-names>
</name>
<name>
<surname><![CDATA[Koizumi]]></surname>
<given-names><![CDATA[S]]></given-names>
</name>
<name>
<surname><![CDATA[Fujishima]]></surname>
<given-names><![CDATA[A]]></given-names>
</name>
<name>
<surname><![CDATA[Hashimoto]]></surname>
<given-names><![CDATA[K]]></given-names>
</name>
</person-group>
<source><![CDATA[Thin Solid Films]]></source>
<year>1999</year>
<volume>351</volume>
<page-range>260-263</page-range></nlm-citation>
</ref>
<ref id="B6">
<label>6</label><nlm-citation citation-type="journal">
<person-group person-group-type="author">
<name>
<surname><![CDATA[Hassan]]></surname>
<given-names><![CDATA[M.M]]></given-names>
</name>
<name>
<surname><![CDATA[Dylla]]></surname>
<given-names><![CDATA[H]]></given-names>
</name>
<name>
<surname><![CDATA[Mohammad]]></surname>
<given-names><![CDATA[L.M]]></given-names>
</name>
<name>
<surname><![CDATA[Rupnow]]></surname>
<given-names><![CDATA[T]]></given-names>
</name>
</person-group>
<source><![CDATA[Construction and building materials]]></source>
<year>2010</year>
<volume>24</volume>
<page-range>1456-1461</page-range></nlm-citation>
</ref>
<ref id="B7">
<label>7</label><nlm-citation citation-type="journal">
<person-group person-group-type="author">
<name>
<surname><![CDATA[Tobón]]></surname>
<given-names><![CDATA[J. I]]></given-names>
</name>
<name>
<surname><![CDATA[Restrepo]]></surname>
<given-names><![CDATA[O. J]]></given-names>
</name>
<name>
<surname><![CDATA[Payá]]></surname>
<given-names><![CDATA[J. J]]></given-names>
</name>
</person-group>
<source><![CDATA[Dyna]]></source>
<year>2007</year>
<volume>74</volume>
<numero>152</numero>
<issue>152</issue>
<page-range>277-291</page-range></nlm-citation>
</ref>
<ref id="B8">
<label>8</label><nlm-citation citation-type="journal">
<person-group person-group-type="author">
<name>
<surname><![CDATA[Ruot]]></surname>
<given-names><![CDATA[B]]></given-names>
</name>
<name>
<surname><![CDATA[Plassais]]></surname>
<given-names><![CDATA[A]]></given-names>
</name>
<name>
<surname><![CDATA[Olive]]></surname>
<given-names><![CDATA[F]]></given-names>
</name>
<name>
<surname><![CDATA[Guillot]]></surname>
<given-names><![CDATA[L]]></given-names>
</name>
<name>
<surname><![CDATA[Bona]]></surname>
<given-names><![CDATA[L]]></given-names>
</name>
</person-group>
<source><![CDATA[Solar Energy]]></source>
<year>2009</year>
<volume>83</volume>
<page-range>1794-1801</page-range></nlm-citation>
</ref>
<ref id="B9">
<label>9</label><nlm-citation citation-type="journal">
<person-group person-group-type="author">
<name>
<surname><![CDATA[Lackhoff]]></surname>
<given-names><![CDATA[M]]></given-names>
</name>
<name>
<surname><![CDATA[Prieto]]></surname>
<given-names><![CDATA[X]]></given-names>
</name>
<name>
<surname><![CDATA[Nestle]]></surname>
<given-names><![CDATA[N]]></given-names>
</name>
<name>
<surname><![CDATA[Dehn]]></surname>
<given-names><![CDATA[F]]></given-names>
</name>
<name>
<surname><![CDATA[Niessner]]></surname>
<given-names><![CDATA[R]]></given-names>
</name>
</person-group>
<source><![CDATA[Applied Catalysis B: Environmental]]></source>
<year>2003</year>
<volume>43</volume>
<page-range>205-216</page-range></nlm-citation>
</ref>
<ref id="B10">
<label>10</label><nlm-citation citation-type="journal">
<person-group person-group-type="author">
<name>
<surname><![CDATA[Vinu]]></surname>
<given-names><![CDATA[R]]></given-names>
</name>
<name>
<surname><![CDATA[Madras]]></surname>
<given-names><![CDATA[G]]></given-names>
</name>
</person-group>
<source><![CDATA[Journal of the Indian Institute of Science]]></source>
<year>2010</year>
<volume>90</volume>
<page-range>189-230</page-range></nlm-citation>
</ref>
<ref id="B11">
<label>11</label><nlm-citation citation-type="book">
<person-group person-group-type="author">
<name>
<surname><![CDATA[Billmeyer]]></surname>
<given-names><![CDATA[F. W]]></given-names>
</name>
<name>
<surname><![CDATA[Saltzman]]></surname>
<given-names><![CDATA[M]]></given-names>
</name>
</person-group>
<source><![CDATA[Principles of Color Technology]]></source>
<year>1981</year>
<volume>1-2</volume>
<edition>Second</edition>
<publisher-name><![CDATA[John Wiley & sons]]></publisher-name>
</nlm-citation>
</ref>
<ref id="B12">
<label>12</label><nlm-citation citation-type="journal">
<person-group person-group-type="author">
<name>
<surname><![CDATA[Ohno]]></surname>
<given-names><![CDATA[T]]></given-names>
</name>
<name>
<surname><![CDATA[Tokieda]]></surname>
<given-names><![CDATA[K]]></given-names>
</name>
<name>
<surname><![CDATA[Higashida]]></surname>
<given-names><![CDATA[S]]></given-names>
</name>
<name>
<surname><![CDATA[Matsumura]]></surname>
<given-names><![CDATA[M]]></given-names>
</name>
</person-group>
<source><![CDATA[Applied Catalysis A: General]]></source>
<year>2003</year>
<volume>244</volume>
<page-range>383- 391</page-range></nlm-citation>
</ref>
<ref id="B13">
<label>13</label><nlm-citation citation-type="journal">
<person-group person-group-type="author">
<name>
<surname><![CDATA[Fujishima]]></surname>
<given-names><![CDATA[A]]></given-names>
</name>
<name>
<surname><![CDATA[Zhang]]></surname>
<given-names><![CDATA[X]]></given-names>
</name>
<name>
<surname><![CDATA[Tryk]]></surname>
<given-names><![CDATA[D. A]]></given-names>
</name>
</person-group>
<source><![CDATA[Surface Science Reports]]></source>
<year>2008</year>
<volume>63</volume>
<page-range>515-582</page-range></nlm-citation>
</ref>
<ref id="B14">
<label>15</label><nlm-citation citation-type="journal">
<person-group person-group-type="author">
<name>
<surname><![CDATA[Yan]]></surname>
<given-names><![CDATA[X]]></given-names>
</name>
<name>
<surname><![CDATA[Ohno]]></surname>
<given-names><![CDATA[T]]></given-names>
</name>
<name>
<surname><![CDATA[Nishijima]]></surname>
<given-names><![CDATA[K]]></given-names>
</name>
<name>
<surname><![CDATA[Abe]]></surname>
<given-names><![CDATA[R]]></given-names>
</name>
<name>
<surname><![CDATA[Ohtani]]></surname>
<given-names><![CDATA[B]]></given-names>
</name>
</person-group>
<source><![CDATA[Chemical Physics letters]]></source>
<year>2006</year>
<volume>429</volume>
<page-range>606-610</page-range></nlm-citation>
</ref>
</ref-list>
</back>
</article>
