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    <journal-meta>
      <journal-id journal-id-type="publisher-id">IJLTEMAS</journal-id>
      <journal-title-group>
        <journal-title>International Journal of Latest Technology in Engineering, Management &amp; Applied Science (IJLTEMAS)</journal-title>
        <abbrev-journal-title abbrev-type="publisher">IJLTEMAS</abbrev-journal-title>
      </journal-title-group>
      <issn pub-type="epub">2278-2540</issn>
      <publisher>
        <publisher-name>IJLTEMAS</publisher-name>
      </publisher>
    </journal-meta>

    <article-meta>
      <!-- IDs -->
      <article-id pub-id-type="publisher-id">28</article-id>
            <article-id pub-id-type="doi">10.51583/IJLTEMAS.2026.150700023</article-id>
      
      <!-- Categories -->
            <article-categories>
        <subj-group subj-group-type="heading">
          <subject>Physico-Chemical</subject>
        </subj-group>
      </article-categories>
      
      <!-- Title -->
      <title-group>
        <article-title>Physico-Chemical Characterization of Kole Wetland Soils in Thrissur District, Kerala: Implications for Paddy Cultivation and Wetland Management</article-title>
      </title-group>

      <!-- Authors -->
      <contrib-group>
                <contrib contrib-type="author">
                    <name>
            <surname>Therattil</surname>
            <given-names>Bolie</given-names>
          </name>
                              <aff>
            Associate Professor, Department of Chemistry, St. Aloysius College, Elthuruth, Thrissur – 680 121, Kerala, India (Affiliated to University of Calicut)                        <country>India</country>
                      </aff>
                    
        </contrib>
              </contrib-group>

      <!-- Volume / Issue / Pages -->
            <volume>15</volume>
                  <issue>7</issue>
                        <fpage>273</fpage>
            <lpage>282</lpage>
            
      <!-- Dates -->
      <history>
                <date date-type="received">
          <day>12</day>
          <month>07</month>
          <year>2026</year>
        </date>
                        <date date-type="accepted">
          <day>17</day>
          <month>07</month>
          <year>2026</year>
        </date>
              </history>

            <pub-date pub-type="epub">
        <day>06</day>
        <month>08</month>
        <year>2026</year>
      </pub-date>
      
      <!-- DOI Self-URI -->
            <self-uri xlink:href="https://doi.org/10.51583/IJLTEMAS.2026.150700023"/>
      
      <!-- Keywords -->
            <kwd-group kwd-group-type="author">
                <kwd>Kole wetlands; soil physico-chemical properties; oxidation-reduction potential; paddy soils; wetland management; soil fertility</kwd>
              </kwd-group>
      
    </article-meta>
  </front>

  <!-- ============================================================ BODY (Abstract) -->
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        <sec>
      <title>Abstract</title>
      <p>Kole wetlands of Thrissur District, Kerala, represent a unique low-lying rice-growing ecosystem of significant ecological and agricultural importance. This study investigated the physico-chemical properties of soils from nine representative sites across the Kole lands to assess their fertility status and redox characteristics. Soil samples were analyzed for moisture content, pH, electrical conductivity (EC), oxidation-reduction potential (ORP), total dissolved solids (TDS), salinity, specific gravity, and macronutrients (organic carbon, phosphorus, and potassium). Results revealed considerable spatial variability in soil properties. The pH ranged from 3.28 to 8.13, with most sites exhibiting near-neutral to slightly alkaline conditions favorable for rice cultivation. ORP values ranged from 250 to 393 mV, indicating predominantly oxidized conditions in the surface soils. EC values (0.00268–0.00730 dS/cm) and salinity (0.01–0.03%) were low, confirming the freshwater nature of these wetlands. Organic carbon content varied from 0.68 to 1.02%, while available phosphorus (16–17 kg/ha) and potassium (187–198 kg/ha) were within acceptable ranges for rice cultivation. One site (Pullazhi Wetland) exhibited anomalous characteristics with extremely low pH (3.28), high ORP (393 mV), and elevated EC (0.00730 dS/cm), suggesting localized acidification or contamination. The findings provide baseline data for sustainable management of Kole wetlands and highlight the need for site-specific soil betterment strategies to maintain soil health and agricultural productivity in this ecologically sensitive region.</p>
    </sec>
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    <ref-list>
      <title>References</title>
            <ref id="ref1">
        <label>1</label>
        <mixed-citation>Amrutha K, Beena VI, Geetha P. Chemical characterization of soils from Kole land ecosystem of Thrissur District, Kerala, India. Int J Environ Clim Change. 2024;14(7):42–49. https://doi.org/10.9734/ijecc/2024/v14i74249</mixed-citation>
      </ref>
            <ref id="ref2">
        <label>2</label>
        <mixed-citation>Vidya PV, Rajathy S, Ratheesh Kumar CS, et al. Fractionation of sediment-bound nitrogen: Bioavailability and contamination status of the nutrient in Thrissur Kole wetlands, Southwest India. Soil Sediment Contam. 2024;33. https://doi.org/10.1080/15320383.2024.2394658</mixed-citation>
      </ref>
            <ref id="ref3">
        <label>3</label>
        <mixed-citation>Anusree T, Durga Devi KM, Latha A. Physico-chemical and biological properties of soils in northern Kole land of Thrissur district in the post-flood scenario. Indian J Nat Sci. 2023;14(77):7–15.</mixed-citation>
      </ref>
            <ref id="ref4">
        <label>4</label>
        <mixed-citation>Composition of sedimentary organic matter in Thrissur Kole wetland, Southwest India. Research Square (preprint). 2022. https://doi.org/10.21203/rs.3.rs-1580824/v1</mixed-citation>
      </ref>
            <ref id="ref5">
        <label>5</label>
        <mixed-citation>Jacob J, Thomas M, Priya TT. A study on macronutrient status of wetland soils of Kannur District, Kerala. Int J Pure App Biosci. 2016;4(4):197–203.</mixed-citation>
      </ref>
            <ref id="ref6">
        <label>6</label>
        <mixed-citation>Borase A, Saraf R, Chaudhari P, Mane S, Chaudhari B. Study of physico-chemical properties and microbial diversity of soil. Biosci Discov. 2019;10(1):26–34.</mixed-citation>
      </ref>
            <ref id="ref7">
        <label>7</label>
        <mixed-citation>Babu S, Nair VN. Organic carbon status of soils of the Kuttanad wetland ecosystem of Kerala, India. J Trop Agric. 2002;40:59–63.</mixed-citation>
      </ref>
            <ref id="ref8">
        <label>8</label>
        <mixed-citation>Das D, Bhatt BP, Datta M, Dey A, Dhiman KR. Physico-chemical properties and organic carbon status of some hill soils of Tripura, India. Indian J Hill Farming. 2013;26(1):50–54.</mixed-citation>
      </ref>
            <ref id="ref9">
        <label>9</label>
        <mixed-citation>Mitsch WJ, Gosselink JG. Wetlands. 5th ed. Hoboken: Wiley; 2015.</mixed-citation>
      </ref>
            <ref id="ref10">
        <label>10</label>
        <mixed-citation>Dent D. Acid Sulphate Soils: A Baseline for Research and Development. ILRI Publication 39. Wageningen: International Land Reclamation and Improvement Institute; 1986.</mixed-citation>
      </ref>
            <ref id="ref11">
        <label>11</label>
        <mixed-citation>Parvathy CA, John VK, Meharban MP. Evaluation of water quality in Thrissur-Malappuram Kole wetlands of Kerala using water quality index. Int J Zool Investig. 2022;8(2). https://doi.org/10.33745/ijzi.2022.v08i02.022</mixed-citation>
      </ref>
            <ref id="ref12">
        <label>12</label>
        <mixed-citation>Masto RE, Chhonkar PK, Singh D, Patra AK. Changes in soil biological and biochemical characteristics in a long-term field trial on a sub-tropical inceptisol. Soil Biol Biochem. 2006;38(7):1577–1582. https://doi.org/10.1016/j.soilbio.2005.11.012</mixed-citation>
      </ref>
            <ref id="ref13">
        <label>13</label>
        <mixed-citation>APHA. Standard Methods for the Examination of Water and Wastewater. 23rd ed. Washington DC: American Public Health Association; 2017.</mixed-citation>
      </ref>
            <ref id="ref14">
        <label>14</label>
        <mixed-citation>Goswami NN, Pathak BN, Senapati HK. Soil acidity and its management in India. Bhubaneswar: Orissa University of Agriculture and Technology; 1988.</mixed-citation>
      </ref>
            <ref id="ref15">
        <label>15</label>
        <mixed-citation>Grasset C, Rodriguez C, et al. Can soil organic carbon fractions be used as functional indicators of wetlands? Wetlands. 2018;38(1). https://doi.org/10.1007/S13157-017-0951-Z</mixed-citation>
      </ref>
            <ref id="ref16">
        <label>16</label>
        <mixed-citation>Krishnakumar V, Sureshkumar P, Lathika MP, Nair NR, Sajeev MV. Acid sulfate soils of Kuttanad, Kerala, India – characteristics and management. J Trop Agric. 2009;47(1–2):27–34.</mixed-citation>
      </ref>
            <ref id="ref17">
        <label>17</label>
        <mixed-citation>[17] Sahrawat KL. Acid sulfate soils and their management with emphasis on Asia. Agron J. 2004;96(3):815–825. https://doi.org/10.2134/agronj2004.0815</mixed-citation>
      </ref>
            <ref id="ref18">
        <label>18</label>
        <mixed-citation>Vidya PV, Rajathy S, Ratheesh Kumar CS. Hydrogeochemical characteristics of Thrissur Kole Wetland, Southwest India. Int J River Basin Manag. 2024;22(3). https://doi.org/10.1080/15715124.2024.2328319</mixed-citation>
      </ref>
            <ref id="ref19">
        <label>19</label>
        <mixed-citation>Dent DL, Pons LJ. A world perspective on acid sulphate soils. Geoderma. 1995;67(3–4):263–276. https://doi.org/10.1016/0016-7061(95)00013-E</mixed-citation>
      </ref>
            <ref id="ref20">
        <label>20</label>
        <mixed-citation>Ponnamperuma FN. The chemistry of submerged soils. Adv Agron. 1972;24:29– 96. https://doi.org/10.1016/S0065-2113(08)60633-1</mixed-citation>
      </ref>
            <ref id="ref21">
        <label>21</label>
        <mixed-citation>Patrick WH Jr, Mikkelsen DS, Wells BR. Plant nutrient behavior in flooded soils. In: Engelstad OP, ed. Fertilizer Technology and Use. 3rd ed. Madison: SSSA; 1985:197–228.</mixed-citation>
      </ref>
            <ref id="ref22">
        <label>22</label>
        <mixed-citation>Rodrigo DM, Pollard AG. Chemistry of waterlogged soils. I—Changes in oxidation-reduction potentials of two soils on submergence; influence of pH and organic matter. J Sci Food Agric. 1962;13(1). https://doi.org/10.1002/JSFA.2740130108</mixed-citation>
      </ref>
            <ref id="ref23">
        <label>23</label>
        <mixed-citation>Gambrell RP, Patrick WH Jr. Chemical and microbiological properties of anaerobic soils and sediments. In: Hook DD, Crawford RMM, eds. Plant Life in Anaerobic Environments. Ann Arbor: Ann Arbor Science; 1978:375–423.</mixed-citation>
      </ref>
            <ref id="ref24">
        <label>24</label>
        <mixed-citation>Van Breemen N. Effects of seasonal redox processes involving iron on the chemistry of periodically reduced soils. Developments in Soil Science. 1988;17. https://doi.org/10.1016/S0166-2481(08)70612-2</mixed-citation>
      </ref>
            <ref id="ref25">
        <label>25</label>
        <mixed-citation>Bohn HL. Redox potentials. Soil Sci. 1971;112(1):39–45. https://doi.org/10.1097/00010694-197107000-00006</mixed-citation>
      </ref>
            <ref id="ref26">
        <label>26</label>
        <mixed-citation>Kirk GJD. The Biogeochemistry of Submerged Soils. Chichester: Wiley; 2004.</mixed-citation>
      </ref>
            <ref id="ref27">
        <label>27</label>
        <mixed-citation>Bohnen H, Da Silva LS, Macedo VRM, Marcolin E. Eh e pH do solo em diversas condições de preparo e irrigação do arroz irrigado. Cienc Rural. 2005;35(2). https://doi.org/10.1590/S0103-84782005000200003</mixed-citation>
      </ref>
            <ref id="ref28">
        <label>28</label>
        <mixed-citation>Vepraskas MJ, Faulkner SP. Redox chemistry of hydric soils. In: Richardson JL, Vepraskas MJ, eds. Wetland Soils. Boca Raton: Lewis Publishers; 2001:85–106.</mixed-citation>
      </ref>
            <ref id="ref29">
        <label>29</label>
        <mixed-citation>Neue HU, Lantin RS. Micronutrient toxicities and deficiencies in rice. In: Yeo AR, Flowers TJ, eds. Soil Mineral Stresses. Berlin: Springer; 1994:175–200.</mixed-citation>
      </ref>
            <ref id="ref30">
        <label>30</label>
        <mixed-citation>Tao Y, Zhang Y, Jin X, et al. More dissolved organic carbon is export from a rice paddy than a wheat field. Sci Total Environ. 2016;549–550. https://doi.org/10.1016/j.scitotenv.2016.01.122</mixed-citation>
      </ref>
            <ref id="ref31">
        <label>31</label>
        <mixed-citation>McBride MB. Chapter 8: The redox-pH approach to the geochemistry of the Earth’s land surface, with application to peatlands. Dev Earth Surface Processes. 2006;9. https://doi.org/10.1016/S0928-2025(06)09008-0</mixed-citation>
      </ref>
            <ref id="ref32">
        <label>32</label>
        <mixed-citation>Majumdar A, Dubey P, Giri B, et al. Combined effects of dry-wet irrigation, redox changes and microbial diversity on soil nutrient bioavailability in the rice field. Soil Tillage Res. 2023;234:105752. https://doi.org/10.1016/j.still.2023.105752</mixed-citation>
      </ref>
            <ref id="ref33">
        <label>33</label>
        <mixed-citation>Prem M, Hansen HCB, et al. High spatial and fast changes of iron redox state and phosphorus solubility in a seasonally flooded temperate wetland soil. Wetlands. 2015;35(2). https://doi.org/10.1007/S13157-014-0608-0</mixed-citation>
      </ref>
            <ref id="ref34">
        <label>34</label>
        <mixed-citation>Thomas CR, Miao SL, Sindhoj E. Environmental factors affecting temporal and spatial patterns of soil redox potential in Florida Everglades wetlands. Wetlands. 2009;29(4). https://doi.org/10.1672/08-234.1</mixed-citation>
      </ref>
            <ref id="ref35">
        <label>35</label>
        <mixed-citation>Gardiner DT, James S. Wet soil redox chemistry as affected by organic matter and nitrate. Am J Clim Change. 2012;1(4). https://doi.org/10.4236/AJCC.2012.14017</mixed-citation>
      </ref>
            <ref id="ref36">
        <label>36</label>
        <mixed-citation>Tokarz E, Urban D. Soil redox potential and its impact on microorganisms and plants of wetlands. J Ecol Eng. 2015;16(3). https://doi.org/10.12911/22998993/2801</mixed-citation>
      </ref>
            <ref id="ref37">
        <label>37</label>
        <mixed-citation>Dunne EJ, Reddy KR, Clark MW. Phosphorus release and retention by soils of natural isolated wetlands. Int J Environ Pollut. 2006;28(3–4). https://doi.org/10.1504/IJEP.2006.011225</mixed-citation>
      </ref>
            <ref id="ref38">
        <label>38</label>
        <mixed-citation>Takai Y, Kamura T. The mechanism of reduction in waterlogged paddy soil. Folia Microbiol. 1966;11(4). https://doi.org/10.1007/BF02878902</mixed-citation>
      </ref>
            <ref id="ref39">
        <label>39</label>
        <mixed-citation>Yu K. Redox potential control on cumulative global warming potentials from irrigated rice fields. ACS Symp Ser. 2011;1072. https://doi.org/10.1021/bk-2011-1072.ch007</mixed-citation>
      </ref>
            <ref id="ref40">
        <label>40</label>
        <mixed-citation>Fageria NK, Carvalho GD, Santos AB, et al. Chemistry of lowland rice soils and nutrient availability. Commun Soil Sci Plant Anal. 2011;42(16). https://doi.org/10.1080/00103624.2011.591467</mixed-citation>
      </ref>
            <ref id="ref41">
        <label>41</label>
        <mixed-citation>Gerla PJ. Can pH and electrical conductivity monitoring reveal spatial and temporal patterns in wetland geochemical processes? Hydrol Earth Syst Sci Discuss. 2013;10. https://doi.org/10.5194/HESSD-10-699-2013</mixed-citation>
      </ref>
            <ref id="ref42">
        <label>42</label>
        <mixed-citation>Sahrawat KL. Fertility and organic matter in submerged rice soils. Curr Sci. 2005;88(5):735–739.</mixed-citation>
      </ref>
            <ref id="ref43">
        <label>43</label>
        <mixed-citation>Anusree T, Durga Devi KM, Latha A. Physico-chemical and biological properties of soils in northern Kole land of Thrissur district in the post-flood scenario. Indian J Nat Sci. 2023;14(77):7–15.</mixed-citation>
      </ref>
            <ref id="ref44">
        <label>44</label>
        <mixed-citation>Safnathmol P, Rajalekshmi K, Latha A. Soil quality assessment and GIS-based mapping in post-flood soils of Kole wetlands of Kerala. J Trop Agric. 2022;60(2).</mixed-citation>
      </ref>
            <ref id="ref45">
        <label>45</label>
        <mixed-citation>Purandhar E, et al. Macronutrient status of low land soil profiles (Kole, Kaipad and Mangroves) of North Kerala, India. Agrotropica. 2022.</mixed-citation>
      </ref>
            <ref id="ref46">
        <label>46</label>
        <mixed-citation>Corwin DL, Yemoto K. Salinity: Electrical conductivity and total dissolved solids. Methods Soil Anal. 2017;2(1). https://doi.org/10.2136/msa2015.0039</mixed-citation>
      </ref>
            <ref id="ref47">
        <label>47</label>
        <mixed-citation>Fiedler S, Sommer M. Water and redox conditions in wetland soils—their influence on pedogenic oxides and morphology. Soil Sci Soc Am J. 2004;68(1):326–335. https://doi.org/10.2136/sssaj2004.3260</mixed-citation>
      </ref>
            <ref id="ref48">
        <label>48</label>
        <mixed-citation>Corwin DL, Yemoto K. Measurement of soil salinity: Electrical conductivity and total dissolved solids. Soil Sci Soc Am J. 2019;83(1):1–2. https://doi.org/10.2136/sssaj2018.09.0358</mixed-citation>
      </ref>
          </ref-list>
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