<?xml version="1.0" encoding="UTF-8"?><!DOCTYPE article  PUBLIC "-//NLM//DTD Journal Publishing DTD v3.0 20080202//EN" "http://dtd.nlm.nih.gov/publishing/3.0/journalpublishing3.dtd"><article xmlns:mml="http://www.w3.org/1998/Math/MathML" xmlns:xlink="http://www.w3.org/1999/xlink" dtd-version="3.0" xml:lang="en" article-type="research article"><front><journal-meta><journal-id journal-id-type="publisher-id">JSEMAT</journal-id><journal-title-group><journal-title>Journal of Surface Engineered Materials and Advanced Technology</journal-title></journal-title-group><issn pub-type="epub">2161-4881</issn><publisher><publisher-name>Scientific Research Publishing</publisher-name></publisher></journal-meta><article-meta><article-id pub-id-type="doi">10.4236/jsemat.2014.41003</article-id><article-id pub-id-type="publisher-id">JSEMAT-42050</article-id><article-categories><subj-group subj-group-type="heading"><subject>Articles</subject></subj-group><subj-group subj-group-type="Discipline-v2"><subject>Chemistry&amp;Materials Science</subject><subject> Engineering</subject></subj-group></article-categories><title-group><article-title>
 
 
  Removal of Fe3+ from Aqueous Solution by Natural Apatite
 
</article-title></title-group><contrib-group><contrib contrib-type="author" xlink:type="simple"><name name-style="western"><surname>ongming</surname><given-names>Qian</given-names></name><xref ref-type="aff" rid="aff1"><sup>1</sup></xref><xref ref-type="corresp" rid="cor1"><sup>*</sup></xref></contrib><contrib contrib-type="author" xlink:type="simple"><name name-style="western"><surname>Maolin</surname><given-names>Li</given-names></name><xref ref-type="aff" rid="aff1"><sup>1</sup></xref></contrib><contrib contrib-type="author" xlink:type="simple"><name name-style="western"><surname>Fei</surname><given-names>Wang</given-names></name><xref ref-type="aff" rid="aff1"><sup>1</sup></xref></contrib><contrib contrib-type="author" xlink:type="simple"><name name-style="western"><surname>Xinggang</surname><given-names>Liu</given-names></name><xref ref-type="aff" rid="aff1"><sup>1</sup></xref></contrib></contrib-group><aff id="aff1"><addr-line>School of Resource and Environmental Engineering, Wuhan University of Science &amp;amp; Technology, Wuhan, China</addr-line></aff><author-notes><corresp id="cor1">* E-mail:<email>gongmingqian@126.com(OQ)</email>;</corresp></author-notes><pub-date pub-type="epub"><day>16</day><month>01</month><year>2014</year></pub-date><volume>04</volume><issue>01</issue><fpage>14</fpage><lpage>20</lpage><history><date date-type="received"><day>November</day>	<month>13th,</month>	<year>2013</year></date><date date-type="rev-recd"><day>December</day>	<month>11th,</month>	<year>2013</year>	</date><date date-type="accepted"><day>January</day>	<month>10th,</month>	<year>2014</year></date></history><permissions><copyright-statement>&#169; Copyright  2014 by authors and Scientific Research Publishing Inc. </copyright-statement><copyright-year>2014</copyright-year><license><license-p>This work is licensed under the Creative Commons Attribution International License (CC BY). http://creativecommons.org/licenses/by/4.0/</license-p></license></permissions><abstract><p>
 
 
   The feasibility of natural apatite for adsorptive removal of Fe<sup>3+</sup> from aqueous solution was investigated. Batch experiments were performed as function of process parameters such as contact time, initial concentration of Fe<sup>3+</sup>, temperature, apatite dosage and pH. The natural apatite exhibited a high performance for the removal of Fe<sup>3+</sup> from aqueous solution. The pH value clearly affects the removal mechanism of Fe<sup>3+</sup> by natural apatite. At low pH value, dissolution/precipitation is the main effect. The effect of hydrolyzation increased with the pH value. After the pH value above 5.0, hydrolyzation is the main effect. The adsorption isotherms demonstrated that the adsorbent behaved in a favorable manner for Fe<sup>3+</sup> adsorption. The experimental data were well fitted with Langmuir isotherm. 
 
</p></abstract><kwd-group><kwd>Adsorbent; Iron Removal; Apatite; Adsorption Isotherm</kwd></kwd-group></article-meta></front><body><sec id="s1"><title></title></sec><sec id="s2"><title>ABSTRACT</title><p>The feasibility of natural apatite for adsorptive removal of Fe<sup>3+</sup> from aqueous solution was investigated. Batch experiments were performed as function of process parameters such as contact time, initial concentration of Fe<sup>3+</sup>, temperature, apatite dosage and pH. The natural apatite exhibited a high performance for the removal of Fe<sup>3+</sup> from aqueous solution. The pH value clearly affects the removal mechanism of Fe<sup>3+</sup> by natural apatite. At low pH value, dissolution/precipitation is the main effect. The effect of hydrolyzation increased with the pH value. After the pH value above 5.0, hydrolyzation is the main effect. The adsorption isotherms demonstrated that the adsorbent behaved in a favorable manner for Fe<sup>3+</sup> adsorption. The experimental data were well fitted with Langmuir isotherm.</p></sec><sec id="s3"><title>ABSTRACT</title><p>Adsorbent; Iron Removal; Apatite; Adsorption Isotherm</p></sec><sec id="s4"><title>1. Introduction</title><p>The tremendous increase in the use of heavy metals over the past few decades has eventually resulted in an increased flux of metallic substances in the environment. The heavy metals are of special concern because they are non-degradable and persistent. From the view of environmental protection, heavy metal ions should be removed from the source to avoid pollution of natural waters and subsequent metal accumulation in food chain. Various technological methods, such as precipitation, cementation, sedimentation, filtration, coagulation, flotation, complexing, solvent extraction, membrane separation, electrochemical technique, biological process, reverse osmosis, ion exchange and adsorption have been used for the removal of toxic heavy metals from wastewater. Among these methods, adsorption is a cost-effective technique and simple to operate [1-3]. The adsorption process usually used natural organic or inorganic materials which are particularly abundant and inexpensive. These natural materials include bark/tannin-rich materials, lignin, chitin/chitosan, dead biomass, seaweed/ algae/alginate, xanthate, zeolite, clay, fly ash, peat moss, bone gelatin beads, leaf mould, moss, iron-oxide-coated sand, modified wool and modified cotton [<xref ref-type="bibr" rid="scirp.42050-ref4">4</xref>].</p><p>The presence of iron ions as one of the heavy metals in ground and industrial water becomes toxic at high level and then may cause environmental and human health problems [5-8]. Iron ions are attracting wide research attention since they are found in many manufacturing industries such as coatings, car, aeronautic and steel industries [<xref ref-type="bibr" rid="scirp.42050-ref9">9</xref>]. Many absorbents have been reported for removal of iron ions (Fe<sup>2+</sup> or Fe<sup>3+</sup>), such as bacterias [9, 10], chitin  [<xref ref-type="bibr" rid="scirp.42050-ref11">11</xref>], palm fruit bunch and maize cob [<xref ref-type="bibr" rid="scirp.42050-ref12">12</xref>], Bengal gram husk [<xref ref-type="bibr" rid="scirp.42050-ref13">13</xref>], tur dal husk [<xref ref-type="bibr" rid="scirp.42050-ref14">14</xref>], eggshells [<xref ref-type="bibr" rid="scirp.42050-ref15">15</xref>], ash [<xref ref-type="bibr" rid="scirp.42050-ref16">16</xref>], sawdust [<xref ref-type="bibr" rid="scirp.42050-ref17">17</xref>], activated carbon [<xref ref-type="bibr" rid="scirp.42050-ref18">18</xref>], natural zeolite [<xref ref-type="bibr" rid="scirp.42050-ref19">19</xref>], bentonite and quartz [<xref ref-type="bibr" rid="scirp.42050-ref20">20</xref>], and apatite [21- 23].</p><p>The general formula of apatite is M<sub>10</sub>(XO<sub>4</sub>)<sub>6</sub>Y<sub>2</sub> (M = Ca<sup>2+</sup>, Sr<sup>2+</sup>, Pb<sup>2+</sup>, Cd<sup>2+</sup>, Ba<sup>2+</sup>, Zn<sup>2+</sup>, Mg<sup>2+</sup>, ...; XO<sub>4</sub> =<inline-formula><inline-graphic xlink:href="tmlimages\3-1180202x\7e7a20e8-ba5c-4ce1-be1f-e03ddf4f6b75.png" xlink:type="simple"/></inline-formula>, <inline-formula><inline-graphic xlink:href="tmlimages\3-1180202x\9a6494b9-0f1d-48d0-b1b3-d18a81cd8e72.png" xlink:type="simple"/></inline-formula>, <inline-formula><inline-graphic xlink:href="tmlimages\3-1180202x\25c0bee1-f2f2-4ab9-9a6b-be6eec4d65ec.png" xlink:type="simple"/></inline-formula>, ...; Y = F<sup>−</sup>, OH<sup>−</sup>, Cl<sup>−</sup>, ...) [23-30]. Hydroxyapatite (Ca<sub>10</sub>(PO<sub>4</sub>)<sub>6</sub>(OH)<sub>2</sub>, HAP) is a member of apatite mineral family. It is an ideal adsorptive material for long-term containment because of its high sorption capacity for heavy metals, low water solubility, high stability under reducing and oxidizing conditions, availability and low cost [<xref ref-type="bibr" rid="scirp.42050-ref24">24</xref>]. There are many reports on the use of HAP for stabilizing a variety of metals such as Co, Pb, Cu, Zn, Cd, Sb, Cr [23-28]. Different mechanisms for metal cations retention such as ion exchange, adsorption, dissolution/precipitation and formation of surface complexes have been proposed [26,29,30].</p><p>Ma et al. [<xref ref-type="bibr" rid="scirp.42050-ref23">23</xref>] have reported the use of hydroxyapatite for removal of heavy metals (Pb<sup>2+</sup>, Zn<sup>2+</sup>, Cu<sup>2+</sup>, Cd<sup>2+</sup>, Fe<sup>2+</sup> and Al<sup>3+</sup>) in batch experiments. In Fe<sup>2+</sup> removal experiments, these authors only observed some retention of Fe<sup>2+</sup> on new phases but no Fe<sup>2+</sup> solids were detected by XRD. Gschwend and Reynolds [<xref ref-type="bibr" rid="scirp.42050-ref31">31</xref>] have reported the in-situ subsurface formation of colloidal Fe phosphate solids, which were attributed to the interaction of different phosphate species combined with Fe<sup>2+</sup> released from the solids of the aquifer. It was suggested that the colloidal solids were vivianite. Oliva et al. [<xref ref-type="bibr" rid="scirp.42050-ref21">21</xref>] have studied the sorption of Fe<sup>2+</sup> onto biogenic hydroxyapatite with pH 4.5 and 75 mg/L Fe<sup>2+</sup>. The results indicated that apatite is an effective absorbent for the removal of Fe<sup>2+</sup>. The study of iron adsorption by eggshells indicated the reversible and exothermic nature of sorption [<xref ref-type="bibr" rid="scirp.42050-ref15">15</xref>]. However, so far there has been no report on the use of natural apatite for removing Fe<sup>3+</sup> from aqueous solution.</p><p>In this work, we presented the use of natural apatite for removal of Fe<sup>3+</sup> from aqueous solution. The influencing factors such as pH, initial concentration, contact time, dosage of the adsorbent and temperature have been systematically investigated. And the removal mechanism of Fe<sup>3+</sup> by natural apatite was discussed.</p></sec><sec id="s5"><title>2. Materials and Methods</title><sec id="s5_1"><title>2.1. Materials</title><p>Natural apatite used here comes from a phosphate rock in Yichang, China. The sample was ground in a ball mill and sized by wet sieve analysis separately for experimental work. In the present studies, rock phosphate of&#160; 74 - 150 μm size range was used for the removal of Fe<sup>3+</sup> from aqueous solution. Mineralogical analysis of rock phosphate sample reports mainly of apatite and quartz. Dolomite, calcite and iron oxide are the other associated gangue minerals.</p></sec><sec id="s5_2"><title>2.2. Experimental Procedure</title><p>Iron solutions were prepared by dissolving Fe(NO<sub>3</sub>)<sub>3</sub> analytical grade. Adsorption experiments were carried out in the batch reactors (200 mL) containing natural apatite as adsorbent and 50 mL of Fe<sup>3+</sup> solutions having different concentrations (10, 50, 100, 150 and 200 mg/L) and pH (1 - 7) was adjusted with 0.1 M HNO<sub>3</sub> and 0.1 M NH<sub>3</sub>&#183;H<sub>2</sub>O. In order to investigate the effect of the temperature on the adsorption, four adsorption temperatures (273, 293, 303, and 323 K) were studied. The suspensions were stirred with a magnetic stirring bar inside the reactor for different time. Then, the suspensions were filtered through a 0.45 &#181;m membrane filter and the Fe<sup>3+</sup> concentration in the filtrate was analyzed using UV/Vis spectrophotometer (Shimadzu, UV-2550) at 510 nm [<xref ref-type="bibr" rid="scirp.42050-ref32">32</xref>].</p><p>The morphologies and microstructures of natural apatite and the reaction production were observed by using a JSM-5510 scanning electron microscopy (JEOL, Japan). The crystalline phase of natural apatite and the reaction production were detected by powder X-ray diffraction (Bruker D8 ADVANCE, Germany) using Cu Kα radiation.</p></sec></sec><sec id="s6"><title>3. Results and Discussions</title><sec id="s6_1"><title>3.1. Effect of Initial Fe<sup>3+</sup> Concentration</title><p>The effect of initial Fe<sup>3+</sup> concentration in the range of 10 to 200 mg/L on adsorption was investigated (<xref ref-type="fig" rid="fig1">Figure 1</xref>). It is evident from <xref ref-type="fig" rid="fig1">Figure 1</xref> that the removal efficiency of Fe<sup>3+</sup> decreased with the increasing initial Fe<sup>3+</sup> concentration. And the equilibrium adsorption capacity increasedwith increasing initial concentration indicating that higher initial concentration of Fe<sup>3+</sup> can enhance the adsorption process. The initial Fe<sup>3+</sup> concentration provides the necessary driving force to overcome the resistances to the mass transfer of iron between the aqueous phase and the solid phase. The increase in initial Fe<sup>3+</sup> concentration also enhances the interaction between iron and apatite powder. Therefore, an increase in initial Fe<sup>3+</sup> concentration enhances the adsorptive uptake of Fe<sup>3+</sup>. This is due to increase in the driving force of concentration gradient, as an increase in the initial Fe<sup>3+</sup> concentration. The percentage of Fe<sup>3+</sup> removal efficiency was found to be 92.90% for 10 mg/L Fe<sup>3+</sup> and 40.03% for 200 mg/L Fe<sup>3+</sup>. The experimentally derived maximum removal capability of natural apatite was 0.179 mmol/g.</p></sec><sec id="s6_2"><title>3.2. Effect of Contact Time</title><p>The effect of contact time was investigated in the range of 1 min to 17 min. The result (<xref ref-type="fig" rid="fig2">Figure 2</xref>) indicated that the removal rate of Fe<sup>3+</sup> increased at initial period of contact time and it decreased gradually with time until the removal rate reached an equilibrium point. The equilibrium time was established within 9 min. This is probably due to the number and availability of natural apatite surface active sites, as well as the highest driving force for the mass transfer, caused the rapid Fe<sup>3+</sup> uptake at the beginning. Another reason is that the addition of natural apatite increases the pH of solution, which leads to the facile hydrolyzation of Fe<sup>3+</sup>. As the surface adsorption sites become exhausted, the uptake rate is controlled by the rate at which the adsorbate is transported from the exterior to the interior sites of the natural apatite particles.</p></sec><sec id="s6_3"><title>3.3. Effect of Natural Apatite Dosage</title><p>The effect of apatite dosage was studied in the range of 1 g/L to 28 g/L for the initial Fe<sup>3+</sup> concentration of 200 mg/L at pH 2.85. The variation of the removal efficiency of Fe<sup>3+</sup> ions and the pH of filter with natural apatite dosage is shown in <xref ref-type="fig" rid="fig3">Figure 3</xref>. It can be observed that the removal efficiency increases quickly with the increase in natural apatite dosage initially; but beyond a certain value 20 g/L, the removal efficiency reaches almost a constant value. This trend is expected because the number of adsorbent particles increases with increasing the natural apatite dosage which leads to more Fe<sup>3+</sup> attached onto their surfaces. The significant increase in uptake was observed when the dose was increased from 4 to 20 g/L. Any further addition of the adsorbent beyond this did not cause any significant change in the adsorption. A maximum removal efficiency of 98.10% was observed at ad-</p><p>sorbent dosage of 28 g/l. The red brown insoluble iron hydroxide increased with increasing the dosage of natural apatite was observed in the filtration residue. That is to say, the hydrolyzation of Fe<sup>3+</sup> increased very dramatically with increasing the dosage of natural apatite. The reason is that the addition of natural apatite can increase the pH of solution, as a result of sorption of H<sup>+</sup> ions from the acid solution by surface active sites [<xref ref-type="bibr" rid="scirp.42050-ref33">33</xref>]. The result (<xref ref-type="fig" rid="fig3">Figure 3</xref>) indicates that the natural apatite dosage has an obvious effect on pH up to 16 g/L. The surface sorption active sites of H<sup>+</sup> ions are increased with increasing the dosage of natural apatite. The active sites can adsorb most of H<sup>+</sup> ions in the solution at the dosage 16 g/L which leads to the change of filter pH to 7. Any further addition of the natural apatite beyond this did not cause any significant change in the pH. From the discussion above, the adsorption effect and precipitation effect are may be exist together to remove Fe<sup>3+</sup> in aqueous solution.</p></sec><sec id="s6_4"><title>3.4. Effect of Initial pH</title><p>One of the most critical parameters in the adsorption process of metal ions from aqueous solutions is the pH of the medium. Hence, the effect of initial pH on removal of Fe<sup>3+</sup> ions from aqueous solution on natural apatite was studied. The initial pH values was ranged from 1 to 7 at room temperature (20 ˚C) and the initial concentration of Fe<sup>3+</sup> ions was chosen at 200 mg/L. The natural apatite dosage was taken as 20 g/L. The variation of the removal efficiency of Fe<sup>3+</sup> ions and removal capability of Fe<sup>3+</sup> ions with initial pH is shown in <xref ref-type="fig" rid="fig4">Figure 4</xref>. It can be observed that the removal efficiency is increased dramatically with increasing the initial pH, but beyond a certain value 3.0, the removal efficiency reaches almost a constant value. It is known that heavy metal ions convert to insoluble hydroxide and precipitated from the solution at higher value, which lead to the reduction of metal ions. Therefore, both adsorption and precipitation may be re-</p><p>sponsible to remove Fe<sup>3+</sup> in aqueous solution.</p><p>To understand the removal mechanism, the effect of pH on the hydrolyzation of Fe<sup>3+</sup> was investigated. The initial concentration of Fe<sup>3+</sup> ions was 200 mg/L whereas the initial pH values were adjusted to 1.0, 2.0, 3.0, 4.0, 5.0, 6.0, 7.0 by HNO<sub>3</sub> and NH<sub>3</sub>&#183;H<sub>2</sub>O solutions. The solutions were filtered after stirred 10 min and the Fe<sup>3+</sup> concentration in the filtrate was analyzed. The result (<xref ref-type="fig" rid="fig5">Figure 5</xref>) indicated that initially the reduction of Fe<sup>3+</sup> ions in the solution was not strongly. But beyond pH 3.0, the reduction increased dramatically with increasing pH and almost reached a constant value after the pH beyond 5.0. That is to say, the insoluble iron hydroxide increased with increasing pH. After pH 3.0 the hydrolyzation increased dramatically with increasing pH and almost reached a constant value after the pH beyond 5.0. The SEM images of the natural apatite and the reaction production between natural apatite and aqueous Fe<sup>3+</sup> at pH 1 and pH 5 are shown in <xref ref-type="fig" rid="fig6">Figure 6</xref>. The XRD pattern of the natural apatite and the reaction production between natural apatite and aqueous Fe<sup>3+</sup> at pH 1 and pH 5 are shown in <xref ref-type="fig" rid="fig7">Figure 7</xref>. It can be seen that natural apatite dissolved clearly at pH 1 solution (<xref ref-type="fig" rid="fig6">Figure 6</xref>(b)), and the XRD pattern of the reaction production (<xref ref-type="fig" rid="fig7">Figure 7</xref>) revealed the presence of FePO<sub>4</sub>.2H<sub>2</sub>O corresponding to the respective diffraction angles as 17.03˚, 17.91˚, 20.88˚, 22.06˚, 24.27˚, 32.33˚, 63.49˚, 64.07˚ and 65.48˚. The SEM images of the reaction production between natural apatite and aqueous Fe<sup>3+</sup> at pH 5 (<xref ref-type="fig" rid="fig6">Figure 6</xref>(c)) indicated that there are some gel covered on the natural apatite surface, and the XRD pattern of reaction production (<xref ref-type="fig" rid="fig7">Figure 7</xref>) revealed the presence of β-FeOOH corresponding to the respective diffraction angles as 24.13˚, 35.66˚, 56.06˚, 61.97˚ and 64.33˚. Accordingly, we conclude that the pH value clearly affects the removal mechanism of Fe<sup>3+</sup> by natural apatite. At low pH value, dissolution/precipitation is the predominant mechanism. The effect of hydrolyza-</p><p>tion increased with the pH value. After the pH value above 5.0, hydrolyzation is the predominant mechanism.</p></sec><sec id="s6_5"><title>3.5. Effect of Temperature</title><p>The temperature effect on removal of Fe<sup>3+</sup> at 273 K, 293 K, 303 K, and 323 K was studied for the initial Fe<sup>3+</sup> concentration 200 mg/L at pH 2.85. <xref ref-type="fig" rid="fig8">Figure 8</xref> shows the relationship between the removal efficiency of Fe<sup>3+</sup> and temperature. It is found that the adsorption of Fe<sup>3+</sup> increases with increasing temperature. The increase in the removal efficiency of Fe<sup>3+</sup> at increased temperature indicates that the adsorption of Fe<sup>3+</sup> ions onto natural apatite is endothermic in nature.</p></sec><sec id="s6_6"><title>3.6. Adsorption Isotherms</title><p>The capacity of the adsorption isotherm plays an important role in the determination of the maximum capacity of adsorption. It also provides a panorama of course taken by the system under study in a concise form and indicates how efficiently an adsorbent will adsorb and allows an estimate of the economic viability of the adsorbent commercial applications for the specified solute. In order to adapt for the considered system, an adequate model that can reproduce the experimental results obtained. The experimental equilibrium data were fitted using Langmuir, DKR and Freundlich models (<xref ref-type="table" rid="table1">Table 1</xref>). Sorption parameters are as follows: C<sub>e</sub> (mmol/L) is the equilibrium concentration of Fe<sup>3+</sup> in the solution, Q<sub>e</sub> (mmol/g) is the equilibrium concentration of Fe<sup>3+</sup> at natural apatite surface, q<sub>m</sub> (mmol/g) is the maximum sorption capacity, K<sub>L</sub> (L/mmol) the Langmuir constant related to the energy of adsorption, β (mol<sup>2</sup>/J<sup>2</sup>) the DKR constant related to adsorption energy, ε (J/mol) the Polanyi potential, and K (mmol<sup>1−n</sup> L<sup>n</sup> g<sup>−1</sup>) and n are the Freundlich constants related to the capacity and intensity of the sorption process. The graphical illustration of the linear data fitting is shown in  <xref ref-type="fig" rid="fig9">Figure 9</xref>, while calculated sorption parameters and the degree of correlation between the sorption data and applied models are listed in  Table1</p><p>It is obvious from <xref ref-type="table" rid="table1">Table 1</xref>, that the highest correlation coefficient was obtained using Langmuir model, suggesting that the Fe<sup>3+</sup> ions were sorbed by natural apatite</p><p>in a monolayer. Furthermore, the q<sub>m</sub> value calculated by this equation corresponds well with the experimentally obtained sorption capacity which indicates that the Langmuir equation better fits the experimental data.</p><p>Knowing the Langmuir constant, K<sub>L</sub>, the dimensionless separation factor (R<sub>L</sub>) can be derived using the expression [<xref ref-type="bibr" rid="scirp.42050-ref34">34</xref>]:</p><p><img src="htmlimages\3-1180202x\d2495486-5380-4993-bfd0-666b0e39cee8.png" /></p><p>where C<sub>0</sub> (mol/dm<sup>3</sup>) denotes the initial solution concentration. R<sub>L</sub> values indicate that the sorption process is: unfavorable for R<sub>L</sub> &gt; 1, linear for R<sub>L</sub> = 1, favorable for 0 &lt; R<sub>L</sub> &lt; 1, or irreversible for R<sub>L</sub> =0.</p><p>For initial Fe<sup>3+</sup> concentration range from 1.8 &#215; 10<sup>−4</sup> to 3.6 &#215; 10<sup>−3</sup> mol/dm<sup>3</sup>, used in this study, calculated R<sub>L</sub> values were between 0.353 and 0.027, which indicated that the adsorption of Fe<sup>3+</sup> by natural apatite was favorable.</p></sec></sec><sec id="s7"><title>4. Conclusion</title><p>The present investigation showed that natural apatite was an effective adsorbent for the removal of Fe<sup>3+</sup> from aqueous solutions. The removal of Fe<sup>3+</sup> by natural apatite was found to be dependent upon pH, contact time, initial Fe<sup>3+</sup> concentration, dosage of the adsorbent and temperature. The removal efficiency of Fe<sup>3+</sup> increases with the increase of adsorbent dosage and decreases with the increase of initial Fe<sup>3+</sup> concentration. The pH value clearly affects the removal mechanism of Fe<sup>3+</sup> by natural apatite. At low pH value, dissolution/precipitation is the predominant mechanism. The effect of hydrolyzation increased with the pH value. After the pH value above 5.0, hydrolyzation is the predominant mechanism. The equilibrium data were analyzed using Langmuir, DKR, and Freundlich isotherms. The experimental data yielded excellent fits within the following isotherms order Langmuir &gt; DKR &gt; Freundlich, based on its correlation coefficient values.</p></sec><sec id="s8"><title>[<xref ref-type="bibr" rid="scirp.42050-ref1">1</xref>] REFERENCES</title><p>[<xref ref-type="bibr" rid="scirp.42050-ref2">2</xref>] M. Uchida, S. Ito, N. Kawasaki, T. Nakamura and S. Tanada, “Competitive Adsorption of Chloroform and Iron Ion onto Activated Carbon Fiber,” Journal of Colloid Interface Science, Vol. 220, No. 2, 1999, pp. 406-409. http://dx.doi.org/10.1006/jcis.1999.6519</p><p>[<xref ref-type="bibr" rid="scirp.42050-ref3">3</xref>] C. Huang and W. P. Cheng, “Thermodynamic Parameters of Iron-Cyanide Adsorption onto γ-Al<sub>2</sub>O<sub>3</sub>,” Journal of Colloid Interface Science, Vol. 188, No. 2, 1997, pp. 270-274. http://dx.doi.org/10.1006/jcis.1997.4758</p><p>[<xref ref-type="bibr" rid="scirp.42050-ref4">4</xref>] M. Pakula, S. Biniak and A. Swiatkowski, “Chemical and Electrochemical Studies of Interactions between Iron(III) Ions and an Activated Carbon Surface,” Langmuir, Vol. 14, No. 5, 1998, pp. 3082-3089. http://dx.doi.org/10.1021/la9705625</p><p>[<xref ref-type="bibr" rid="scirp.42050-ref5">5</xref>] S. E. Bailey, T. J. Olin, R, M, Bricka and D. D. Adrian, “A Review of Potentially Low-Cost Sorbents for Heavy Metals,” Water Research, Vol. 33, No. 11, 1999, pp. 2469-2479.  http://dx.doi.org/10.1016/S0043-1354(98)00475-8</p><p>[<xref ref-type="bibr" rid="scirp.42050-ref6">6</xref>] P. Sarin, V. L. Snoeyink, J. Bebee, K. K. Jim, M. A. Beckett, W. M. Kriven, et al., “Iron Release from Corroded Iron Pipes in Drinking Water Distribution Systems: Effect of Dissolved Oxygen,” Water Research, Vol. 38, No. 5, 2004, pp. 1259-1269. http://dx.doi.org/10.1016/j.watres.2003.11.022</p><p>[<xref ref-type="bibr" rid="scirp.42050-ref7">7</xref>] S. Chaturvedi, P. N. Dave, “Removal of Iron for Safe Drinking Water,” Desalination, Vol. 303, No. 1, 2012, pp. 1-11. http://dx.doi.org/10.1016/j.desal.2012.07.003</p><p>[<xref ref-type="bibr" rid="scirp.42050-ref8">8</xref>] R. B. Lauffer, “Iron and Human Diseases,” CRC Press, London, 1992.</p><p>[<xref ref-type="bibr" rid="scirp.42050-ref9">9</xref>] T. F. Emery, “Iron and Your Health: Facts and Fallacies,” CRC Press, London, 1991.</p><p>[<xref ref-type="bibr" rid="scirp.42050-ref10">10</xref>]&#160; A. Selatnia, A, Boukazoula, N. Kechid, M. Z. Bakhti and A. Chergui, “Biosorption of Fe<sup>3+</sup> from Aqueous Solution by a Bacterial Dead Streptomyces rimosus Biomass,” Process Biochemistry, Vol. 39, No. 11, 2004, pp. 1643- 1651. http://dx.doi.org/10.1016/S0032-9592(03)00305-4</p><p>[<xref ref-type="bibr" rid="scirp.42050-ref11">11</xref>]&#160; Z. Aksu, A. Calik, A. Y. Dursun and Z. Demircan, “Biosorption of Iron(III)-Cyanide Complex Anions to Rhizopus arrhizus: Application of Adsorption Isotherms,” Process Biochemistry, Vol. 34, No. 5, 1999, pp. 483-491. http://dx.doi.org/10.1016/S0032-9592(98)00115-0</p><p>[<xref ref-type="bibr" rid="scirp.42050-ref12">12</xref>]&#160; G. Karthikeyan, N. M. Andal and K. Anbalagan, “Adsorption Studies of Iron(III) on Chitin,” Journal of Chemical Sciences, Vol. 117, No. 6, 2005, pp. 663-672. http://dx.doi.org/10.1007/BF02708296</p><p>[<xref ref-type="bibr" rid="scirp.42050-ref13">13</xref>]&#160; M. M. Nassar, K. T. Ewida, E. E. Ebrahiem, Y. H. Magdy and M. H. Mheaedi, “Adsorption of Iron and Manganese Ions Using Low-Cost Materials as Adsorbents,” Adsorption Science &amp; Technology, Vol. 22, No. 1, 2004, pp. 25- 37. http://dx.doi.org/10.1260/026361704323150971</p><p>[<xref ref-type="bibr" rid="scirp.42050-ref14">14</xref>]&#160; P. S. Kumar, R. Gayathri and R. P. Arunkumar, “Adsorption of Fe(III) Ions from Aqueous Solution by Bengal gram Husk Powder: Equilibrium Isotherms and Kinetic Approach,” Electronic Journal of Environmental, Agricultural &amp; Food Chemist, Vol. 9, No. 6, 2010, pp. 1047- 1058.</p><p>[<xref ref-type="bibr" rid="scirp.42050-ref15">15</xref>]&#160; N. Ahalya, R. D. Kanamadi and T. V. Ramachandra, “Cr (VI) and Fe (III) Removal Using Cajanus cajan Husk,” Journal of Environmental Biology, Vol. 28, No. 4, 2007, pp. 765-769.</p><p>[<xref ref-type="bibr" rid="scirp.42050-ref16">16</xref>]&#160; N. Yeddou and A. Bensmaili, “Equilibrium and Kinetic of Modeling of Iron Adsorption by Eggshells in a Batch System: Effect of Temperature,” Desalination, Vol. 206, No. 1-3, 2006, pp. 127-134. http://dx.doi.org/10.1016/j.desal.2006.04.052</p><p>[<xref ref-type="bibr" rid="scirp.42050-ref17">17</xref>]&#160; B. Das, P. Hazarika, G. Saikia, H. Kalita, D. C. Goswami, H. B. Das, et al., “Removal of Iron from Groundwater by Ash: A Systematic Study of a Traditional Method,” Journal of Hazardous Materials, Vol. 141, No. 3, 2007, pp. 834-841. http://dx.doi.org/10.1016/j.jhazmat.2006.07.052</p><p>[<xref ref-type="bibr" rid="scirp.42050-ref18">18</xref>]&#160; S. A. Ahmed, “Batch and Fixed-Bed Column Techniques for Removal of Cu(II) and Fe(III) Using Carbohydrate Natural Polymer Modified Complexing Agents,” Carbohydrate Polymers, Vol. 83, No. 4, 2011, pp. 1470-1478. http://dx.doi.org/10.1016/j.carbpol.2010.09.051</p><p>[<xref ref-type="bibr" rid="scirp.42050-ref19">19</xref>]&#160; A. A. Hussain, S. R. Mohammed, M. Nallu and S. Arivoli, “Adsorption of Fe(III) from Aqueous Solution by Acanthaceae Activated Carbon,” Journal of Chemical and Pharmaceutical Research, Vol. 4, No. 4, 2012, pp. 2325- 2336.</p><p>[<xref ref-type="bibr" rid="scirp.42050-ref20">20</xref>]&#160; M. Al-Anber and Z. A. Al-Anber, “Utilization of Natural Zeolite as Ion-Exchange and Sorbent Material in the Removal of Iron,” Desalination, Vol. 225, No. 1-3, 2008, pp. 70-81. http://dx.doi.org/10.1016/j.desal.2007.07.006</p><p>[<xref ref-type="bibr" rid="scirp.42050-ref21">21</xref>]&#160; M. A. Al-Anber, “Removal of high-level Fe<sup>3+</sup> from aqueous solution using natural inorganic materials: Bentonite (NB) and quartz (NQ),” Desalination, Vol. 250, No. 3, 2010, pp. 885-891. http://dx.doi.org/10.1016/j.desal.2009.06.071</p><p>[<xref ref-type="bibr" rid="scirp.42050-ref22">22</xref>]&#160; J. Oliva, J. D. Pablo, J.-L. Cortina, J. Cama and C. Ayora, “The Use of Apatite II<sup>TM</sup> to Remove Divalent Metal Ions Zinc(II), Lead(II), Manganese(II) and Iron(II) from Water in Passive Treatment Systems: Column Experiments,” Journal of hazardous materials, Vol. 184, No. 1, 2010, pp. 364-374. http://dx.doi.org/10.1016/j.jhazmat.2010.08.045</p><p>[<xref ref-type="bibr" rid="scirp.42050-ref23">23</xref>]&#160; G. N. Kousalya, M. R. Gandhi, C. S. Sundaram and S. Meenakshi, “Synthesis of Nano-Hydroxyapatite Chitin/ Chitosan Hybrid Biocomposites for the Removal of Fe(III),” Carbohydrate Polymers, Vol. 82, No. 3, 2010, pp. 594-599. http://dx.doi.org/10.1016/j.carbpol.2010.05.013</p><p>[<xref ref-type="bibr" rid="scirp.42050-ref24">24</xref>]&#160; Q. Y. Ma, S. J. Tralna, T. J. Logan and J. A. Ryan, “Effects of Aqueous Al, Cd, Cu, Fe(II), Ni, and Zn on Pb Immobilization by Hydroxyapatite,” Environment Science &amp; Technology, Vol. 28, No. 7, 1994, pp. 1219-1228. http://dx.doi.org/10.1021/es00056a007</p><p>[<xref ref-type="bibr" rid="scirp.42050-ref25">25</xref>]&#160; A. Krestou, A. Xenidis and D. Panias, “Mechanism of Aqueous Uranium(VI) Uptake by Hydroxyapatite,” Minerals Engineering, Vol. 17, No. 3, 2004, pp. 373-381. http://dx.doi.org/10.1016/j.mineng.2003.11.019</p><p>[<xref ref-type="bibr" rid="scirp.42050-ref26">26</xref>]&#160; A. Corami, S. Mignardi and V. Ferrini, “Copper and Zinc Decontamination from Singleand Binary-Metal Solutions Using Hydroxyapatite,” Journal of Hazardous Materials, Vol. 146, No. 1-2, 2007, pp. 164-170. http://dx.doi.org/10.1016/j.jhazmat.2006.12.003</p><p>[<xref ref-type="bibr" rid="scirp.42050-ref27">27</xref>]&#160; Y. Xu, F. W. Schwartr and S. J. Traina, “Sorption of Zn<sup>2+</sup> and Cd<sup>2+</sup> on Hydroxyapatite Surfaces,” Environment Science &amp; Technology, Vol. 28, No. 8, 1994, pp. 1472- 1480. http://dx.doi.org/10.1021/es00057a015</p><p>[<xref ref-type="bibr" rid="scirp.42050-ref28">28</xref>]&#160; I. Smiciklas, S. Dimovic, I. Plecas and M. Mitric, “Removal of Co<sup>2+</sup> from Aqueous Solutions by Hydroxyapatite,” Water Research, Vol. 40, No. 12, 2006, pp. 2267- 2274.  http://dx.doi.org/10.1016/j.watres.2006.04.031</p><p>[<xref ref-type="bibr" rid="scirp.42050-ref29">29</xref>]&#160; B. Sandrine, N. Ange, B.-A. Didierb, C. Eric and S. Patrick, “Removal of Aqueous Lead Ions by Hydroxyapatites: Equilibria and Kinetic Processes,” Journal of Hazardous Materials, Vol. 139. No. 3, 2007, pp. 443-446. http://dx.doi.org/10.1016/j.jhazmat.2006.02.039</p><p>[<xref ref-type="bibr" rid="scirp.42050-ref30">30</xref>]&#160; M. Srinivasan, C. Ferraris and T. White, “Cadmium and Lead Ion Capture with Three Dimensionally Ordered Macroporous Hydroxyapatite,” Environment Science &amp; Technology, Vol. 40, No. 22, 2006, pp. 7054-7059. http://dx.doi.org/10.1021/es060972s</p><p>[<xref ref-type="bibr" rid="scirp.42050-ref31">31</xref>]&#160; N. C. da Rocha, R. C. de Campos, A. M. Rossi, E. L. Moreira, A. F. Barbosa and G. T. Moure, “Cadmium Uptake by Hydroxyapatite Synthesized in Different Conditions and Submitted to Thermal Treatment,” Environment Science &amp; Technology, Vol. 36, No. 7, 2002, pp. 1630- 1635.  http://dx.doi.org/10.1021/es0155940</p><p>[<xref ref-type="bibr" rid="scirp.42050-ref32">32</xref>]&#160; P. M. Gschwend and M. D. Reynolds, “Monodisperse Ferrous Phosphate Colloids in an Anoxic Groundwater Plume,” Journal of Contaminant Hydrology, Vol. 1, No. 3, 1987, pp. 309-327.  http://dx.doi.org/10.1016/0169-7722(87)90011-8</p><p>[<xref ref-type="bibr" rid="scirp.42050-ref33">33</xref>]&#160; APHA, “Standard Methods for the Examination of Water and Wastewater,” American Public Health Association, Washington DC, 2005.</p><p>[<xref ref-type="bibr" rid="scirp.42050-ref34">34</xref>]&#160; K. Skartsila and N. Spanos, “Surface Characterization of Hydroxyapatite: Potentiometric Titrations Coupled with Solubility Measurements,” Journal of Colloid and Interface Science, Vol. 308, No. 2, 2007, pp. 405-412. http://dx.doi.org/10.1016/j.jcis.2006.12.049</p><p>[<xref ref-type="bibr" rid="scirp.42050-ref35">35</xref>]&#160; K. R. Hall, L. C. Eagleton, A. Acrivos and T. Vermeulen, “Pore and Solid Diffusion Kinetics in Fixed Bed Adsorption under Constant Pattern Conditions,” Industrial &amp; Engineering Chemistry Fundamentals, Vol. 5, No. 2, 1966, pp. 212-223. http://dx.doi.org/10.1021/i160018a011</p></sec></body><back><ref-list><title>References</title><ref id="scirp.42050-ref1"><label>1</label><mixed-citation publication-type="other" xlink:type="simple">M. Uchida, S. Ito, N. Kawasaki, T. Nakamura and S. Tanada, “Competitive Adsorption of Chloroform and Iron Ion onto Activated Carbon Fiber,” Journal of Colloid Interface Science, Vol. 220, No. 2, 1999, pp. 406-409. http://dx.doi.org/10.1006/jcis.1999.6519</mixed-citation></ref><ref id="scirp.42050-ref2"><label>2</label><mixed-citation publication-type="other" xlink:type="simple">C. Huang and W. P. Cheng, “Thermodynamic Parameters of Iron-Cyanide Adsorption onto γ-Al2O3,” Journal of Colloid Interface Science, Vol. 188, No. 2, 1997, pp. 270-274. http://dx.doi.org/10.1006/jcis.1997.4758</mixed-citation></ref><ref id="scirp.42050-ref3"><label>3</label><mixed-citation publication-type="other" xlink:type="simple">M. Pakula, S. Biniak and A. Swiatkowski, “Chemical and Electrochemical Studies of Interactions between Iron(III) Ions and an Activated Carbon Surface,” Langmuir, Vol. 14, No. 5, 1998, pp. 3082-3089. http://dx.doi.org/10.1021/la9705625</mixed-citation></ref><ref id="scirp.42050-ref4"><label>4</label><mixed-citation publication-type="other" xlink:type="simple">S. E. Bailey, T. J. Olin, R, M, Bricka and D. D. Adrian, “A Review of Potentially Low-Cost Sorbents for Heavy Metals,” Water Research, Vol. 33, No. 11, 1999, pp. 2469-2479. http://dx.doi.org/10.1016/S0043-1354(98)00475-8</mixed-citation></ref><ref id="scirp.42050-ref5"><label>5</label><mixed-citation publication-type="other" xlink:type="simple">P. Sarin, V. L. Snoeyink, J. Bebee, K. K. Jim, M. A. Beckett, W. M. Kriven, et al., “Iron Release from Corroded Iron Pipes in Drinking Water Distribution Systems: Effect of Dissolved Oxygen,” Water Research, Vol. 38, No. 5, 2004, pp. 1259-1269. http://dx.doi.org/10.1016/j.watres.2003.11.022</mixed-citation></ref><ref id="scirp.42050-ref6"><label>6</label><mixed-citation publication-type="other" xlink:type="simple">S. Chaturvedi, P. N. Dave, “Removal of Iron for Safe Drinking Water,” Desalination, Vol. 303, No. 1, 2012, pp. 1-11. http://dx.doi.org/10.1016/j.desal.2012.07.003</mixed-citation></ref><ref id="scirp.42050-ref7"><label>7</label><mixed-citation publication-type="other" xlink:type="simple">R. B. Lauffer, “Iron and Human Diseases,” CRC Press, London, 1992.</mixed-citation></ref><ref id="scirp.42050-ref8"><label>8</label><mixed-citation publication-type="other" xlink:type="simple">T. F. Emery, “Iron and Your Health: Facts and Fallacies,” CRC Press, London, 1991.</mixed-citation></ref><ref id="scirp.42050-ref9"><label>9</label><mixed-citation publication-type="other" xlink:type="simple">A. Selatnia, A, Boukazoula, N. Kechid, M. Z. Bakhti and A. Chergui, “Biosorption of Fe3+ from Aqueous Solution by a Bacterial Dead Streptomyces rimosus Biomass,” Process Biochemistry, Vol. 39, No. 11, 2004, pp. 1643-1651. http://dx.doi.org/10.1016/S0032-9592(03)00305-4</mixed-citation></ref><ref id="scirp.42050-ref10"><label>10</label><mixed-citation publication-type="other" xlink:type="simple">Z. Aksu, A. Calik, A. Y. Dursun and Z. Demircan, “Biosorption of Iron(III)-Cyanide Complex Anions to Rhizopus arrhizus: Application of Adsorption Isotherms,” Process Biochemistry, Vol. 34, No. 5, 1999, pp. 483-491. http://dx.doi.org/10.1016/S0032-9592(98)00115-0</mixed-citation></ref><ref id="scirp.42050-ref11"><label>11</label><mixed-citation publication-type="other" xlink:type="simple">G. Karthikeyan, N. M. Andal and K. Anbalagan, “Adsorption Studies of Iron(III) on Chitin,” Journal of Chemical Sciences, Vol. 117, No. 6, 2005, pp. 663-672. http://dx.doi.org/10.1007/BF02708296</mixed-citation></ref><ref id="scirp.42050-ref12"><label>12</label><mixed-citation publication-type="other" xlink:type="simple">M. M. Nassar, K. T. Ewida, E. E. Ebrahiem, Y. H. Magdy and M. H. Mheaedi, “Adsorption of Iron and Manganese Ions Using Low-Cost Materials as Adsorbents,” Adsorption Science &amp; Technology, Vol. 22, No. 1, 2004, pp. 25-37. http://dx.doi.org/10.1260/026361704323150971</mixed-citation></ref><ref id="scirp.42050-ref13"><label>13</label><mixed-citation publication-type="other" xlink:type="simple">P. S. Kumar, R. Gayathri and R. P. Arunkumar, “Adsorption of Fe(III) Ions from Aqueous Solution by Bengal gram Husk Powder: Equilibrium Isotherms and Kinetic Approach,” Electronic Journal of Environmental, Agricultural &amp; Food Chemist, Vol. 9, No. 6, 2010, pp. 1047-1058.</mixed-citation></ref><ref id="scirp.42050-ref14"><label>14</label><mixed-citation publication-type="other" xlink:type="simple">N. Ahalya, R. D. Kanamadi and T. V. Ramachandra, “Cr (VI) and Fe (III) Removal Using Cajanus cajan Husk,” Journal of Environmental Biology, Vol. 28, No. 4, 2007, pp. 765-769.</mixed-citation></ref><ref id="scirp.42050-ref15"><label>15</label><mixed-citation publication-type="other" xlink:type="simple">N. Yeddou and A. Bensmaili, “Equilibrium and Kinetic of Modeling of Iron Adsorption by Eggshells in a Batch System: Effect of Temperature,” Desalination, Vol. 206, No. 1-3, 2006, pp. 127-134. http://dx.doi.org/10.1016/j.desal.2006.04.052</mixed-citation></ref><ref id="scirp.42050-ref16"><label>16</label><mixed-citation publication-type="other" xlink:type="simple">B. Das, P. Hazarika, G. Saikia, H. Kalita, D. C. Goswami, H. B. Das, et al., “Removal of Iron from Groundwater by Ash: A Systematic Study of a Traditional Method,” Journal of Hazardous Materials, Vol. 141, No. 3, 2007, pp. 834-841. http://dx.doi.org/10.1016/j.jhazmat.2006.07.052</mixed-citation></ref><ref id="scirp.42050-ref17"><label>17</label><mixed-citation publication-type="other" xlink:type="simple">S. A. Ahmed, “Batch and Fixed-Bed Column Techniques for Removal of Cu(II) and Fe(III) Using Carbohydrate Natural Polymer Modified Complexing Agents,” Carbohydrate Polymers, Vol. 83, No. 4, 2011, pp. 1470-1478. http://dx.doi.org/10.1016/j.carbpol.2010.09.051</mixed-citation></ref><ref id="scirp.42050-ref18"><label>18</label><mixed-citation publication-type="other" xlink:type="simple">A. A. Hussain, S. R. Mohammed, M. Nallu and S. Arivoli, “Adsorption of Fe(III) from Aqueous Solution by Acanthaceae Activated Carbon,” Journal of Chemical and Pharmaceutical Research, Vol. 4, No. 4, 2012, pp. 2325-2336.</mixed-citation></ref><ref id="scirp.42050-ref19"><label>19</label><mixed-citation publication-type="other" xlink:type="simple">M. Al-Anber and Z. A. Al-Anber, “Utilization of Natural Zeolite as Ion-Exchange and Sorbent Material in the Removal of Iron,” Desalination, Vol. 225, No. 1-3, 2008, pp. 70-81. http://dx.doi.org/10.1016/j.desal.2007.07.006</mixed-citation></ref><ref id="scirp.42050-ref20"><label>20</label><mixed-citation publication-type="other" xlink:type="simple">M. A. Al-Anber, “Removal of high-level Fe3+ from aqueous solution using natural inorganic materials: Bentonite (NB) and quartz (NQ),” Desalination, Vol. 250, No. 3, 2010, pp. 885-891. http://dx.doi.org/10.1016/j.desal.2009.06.071</mixed-citation></ref><ref id="scirp.42050-ref21"><label>21</label><mixed-citation publication-type="other" xlink:type="simple">J. Oliva, J. D. Pablo, J.-L. Cortina, J. Cama and C. Ayora, “The Use of Apatite IITM to Remove Divalent Metal Ions Zinc(II), Lead(II), Manganese(II) and Iron(II) from Water in Passive Treatment Systems: Column Experiments,” Journal of hazardous materials, Vol. 184, No. 1, 2010, pp. 364-374. http://dx.doi.org/10.1016/j.jhazmat.2010.08.045</mixed-citation></ref><ref id="scirp.42050-ref22"><label>22</label><mixed-citation publication-type="other" xlink:type="simple">G. N. Kousalya, M. R. Gandhi, C. S. Sundaram and S. Meenakshi, “Synthesis of Nano-Hydroxyapatite Chitin/ Chitosan Hybrid Biocomposites for the Removal of Fe(III),” Carbohydrate Polymers, Vol. 82, No. 3, 2010, pp. 594-599. http://dx.doi.org/10.1016/j.carbpol.2010.05.013</mixed-citation></ref><ref id="scirp.42050-ref23"><label>23</label><mixed-citation publication-type="other" xlink:type="simple">Q. Y. Ma, S. J. Tralna, T. J. Logan and J. A. Ryan, “Effects of Aqueous Al, Cd, Cu, Fe(II), Ni, and Zn on Pb Immobilization by Hydroxyapatite,” Environment Science &amp; Technology, Vol. 28, No. 7, 1994, pp. 1219-1228. http://dx.doi.org/10.1021/es00056a007</mixed-citation></ref><ref id="scirp.42050-ref24"><label>24</label><mixed-citation publication-type="other" xlink:type="simple">A. Krestou, A. Xenidis and D. Panias, “Mechanism of Aqueous Uranium(VI) Uptake by Hydroxyapatite,” Minerals Engineering, Vol. 17, No. 3, 2004, pp. 373-381. http://dx.doi.org/10.1016/j.mineng.2003.11.019</mixed-citation></ref><ref id="scirp.42050-ref25"><label>25</label><mixed-citation publication-type="other" xlink:type="simple">A. Corami, S. Mignardi and V. Ferrini, “Copper and Zinc Decontamination from Single- and Binary-Metal Solutions Using Hydroxyapatite,” Journal of Hazardous Materials, Vol. 146, No. 1-2, 2007, pp. 164-170. http://dx.doi.org/10.1016/j.jhazmat.2006.12.003</mixed-citation></ref><ref id="scirp.42050-ref26"><label>26</label><mixed-citation publication-type="other" xlink:type="simple">Y. Xu, F. W. Schwartr and S. J. Traina, “Sorption of Zn2+ and Cd2+ on Hydroxyapatite Surfaces,” Environment Science &amp; Technology, Vol. 28, No. 8, 1994, pp. 1472-1480. http://dx.doi.org/10.1021/es00057a015</mixed-citation></ref><ref id="scirp.42050-ref27"><label>27</label><mixed-citation publication-type="other" xlink:type="simple">I. Smiciklas, S. Dimovic, I. Plecas and M. Mitric, “Removal of Co2+ from Aqueous Solutions by Hydroxyapatite,” Water Research, Vol. 40, No. 12, 2006, pp. 2267-2274. http://dx.doi.org/10.1016/j.watres.2006.04.031</mixed-citation></ref><ref id="scirp.42050-ref28"><label>28</label><mixed-citation publication-type="other" xlink:type="simple">B. Sandrine, N. Ange, B.-A. Didierb, C. Eric and S. Patrick, “Removal of Aqueous Lead Ions by Hydroxyapatites: Equilibria and Kinetic Processes,” Journal of Hazardous Materials, Vol. 139. No. 3, 2007, pp. 443-446. http://dx.doi.org/10.1016/j.jhazmat.2006.02.039</mixed-citation></ref><ref id="scirp.42050-ref29"><label>29</label><mixed-citation publication-type="other" xlink:type="simple">M. Srinivasan, C. Ferraris and T. White, “Cadmium and Lead Ion Capture with Three Dimensionally Ordered Macroporous Hydroxyapatite,” Environment Science &amp; Technology, Vol. 40, No. 22, 2006, pp. 7054-7059. http://dx.doi.org/10.1021/es060972s</mixed-citation></ref><ref id="scirp.42050-ref30"><label>30</label><mixed-citation publication-type="other" xlink:type="simple">N. C. da Rocha, R. C. de Campos, A. M. Rossi, E. L. Moreira, A. F. Barbosa and G. T. Moure, “Cadmium Uptake by Hydroxyapatite Synthesized in Different Conditions and Submitted to Thermal Treatment,” Environment Science &amp; Technology, Vol. 36, No. 7, 2002, pp. 1630-1635. http://dx.doi.org/10.1021/es0155940</mixed-citation></ref><ref id="scirp.42050-ref31"><label>31</label><mixed-citation publication-type="other" xlink:type="simple">P. M. Gschwend and M. D. Reynolds, “Monodisperse Ferrous Phosphate Colloids in an Anoxic Groundwater Plume,” Journal of Contaminant Hydrology, Vol. 1, No. 3, 1987, pp. 309-327. http://dx.doi.org/10.1016/0169-7722(87)90011-8</mixed-citation></ref><ref id="scirp.42050-ref32"><label>32</label><mixed-citation publication-type="other" xlink:type="simple">APHA, “Standard Methods for the Examination of Water and Wastewater,” American Public Health Association, Washington DC, 2005.</mixed-citation></ref><ref id="scirp.42050-ref33"><label>33</label><mixed-citation publication-type="other" xlink:type="simple">K. Skartsila and N. Spanos, “Surface Characterization of Hydroxyapatite: Potentiometric Titrations Coupled with Solubility Measurements,” Journal of Colloid and Interface Science, Vol. 308, No. 2, 2007, pp. 405-412. http://dx.doi.org/10.1016/j.jcis.2006.12.049</mixed-citation></ref><ref id="scirp.42050-ref34"><label>34</label><mixed-citation publication-type="other" xlink:type="simple">K. R. Hall, L. C. Eagleton, A. Acrivos and T. Vermeulen, “Pore and Solid Diffusion Kinetics in Fixed Bed Adsorption under Constant Pattern Conditions,” Industrial &amp; Engineering Chemistry Fundamentals, Vol. 5, No. 2, 1966, pp. 212-223. http://dx.doi.org/10.1021/i160018a011</mixed-citation></ref></ref-list></back></article>