<p>Wetland ecosystems are vital for global carbon sequestration, yet floating biomass formations (<i>phumdi</i>) remain understudied despite their unique ecological characteristics. This research presents the first comprehensive comparative analysis of carbon sequestration across three wetland types in Manipur, Northeast India: Pumlen Pat (open wetland, 8697.13&#xa0;ha), Lamphel Pat (closed urban wetland, 587.8&#xa0;ha), and Zaimeng Pat (closed hilly wetland, 4.42&#xa0;ha). The 2-year study (2022–2023) employed seasonal sampling across 26 stations using standardized quadrat-based harvest methods, separating above-water and below-water biomass components. Carbon quantification utilized TIC-TOC analysis of oven-dried samples and included dissolved carbon measurements in water columns. Results revealed significant variations in carbon storage capacity, with Pumlen Pat showing the highest total carbon storage (14.94 ± 5.73&#xa0;Mg C/ha), followed by Lamphel Pat (5.24 ± 1.83&#xa0;Mg C/ha) and Zaimeng Pat (4.06 ± 1.59&#xa0;Mg C/ha). Total biomass accumulation followed similar patterns, with Pumlen Pat recording 515.99 ± 25.78&#xa0;g/m<sup>2</sup>. Strong positive correlations emerged between carbon storage and water depth (<i>r</i> = 0.604, <i>p</i> &lt; 0.001) and rainfall (<i>r</i> = 0.782, <i>p</i> &lt; 0.001), while dissolved oxygen showed a negative correlation (<i>r</i> = − 0.608, <i>p</i> &lt; 0.01). The calculated CO₂ equivalent storage was 476,861.90 ± 49,982.22&#xa0;Mg in Pumlen Pat, 11,303.86 ± 1075.58&#xa0;Mg in Lamphel Pat, and 65.86 ± 7.06&#xa0;Mg in Zaimeng Pat. These findings underscore the importance of maintaining hydrological integrity and protecting larger wetland systems for optimal carbon sequestration while providing critical data for global carbon modeling efforts and informing international wetland conservation strategies.</p>

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Comparative analysis of carbon sequestration potential in different wetland ecosystems: insights from phumdi-dominated wetlands of Northeast India

  • S. Gojendro Singh,
  • Sanjay Kumar Das,
  • Vidya Shree Bharti,
  • Ch. Basudha Devi,
  • Subir Kumar Nag,
  • Ph. Menaka Sharma,
  • Chandan Debnath

摘要

Wetland ecosystems are vital for global carbon sequestration, yet floating biomass formations (phumdi) remain understudied despite their unique ecological characteristics. This research presents the first comprehensive comparative analysis of carbon sequestration across three wetland types in Manipur, Northeast India: Pumlen Pat (open wetland, 8697.13 ha), Lamphel Pat (closed urban wetland, 587.8 ha), and Zaimeng Pat (closed hilly wetland, 4.42 ha). The 2-year study (2022–2023) employed seasonal sampling across 26 stations using standardized quadrat-based harvest methods, separating above-water and below-water biomass components. Carbon quantification utilized TIC-TOC analysis of oven-dried samples and included dissolved carbon measurements in water columns. Results revealed significant variations in carbon storage capacity, with Pumlen Pat showing the highest total carbon storage (14.94 ± 5.73 Mg C/ha), followed by Lamphel Pat (5.24 ± 1.83 Mg C/ha) and Zaimeng Pat (4.06 ± 1.59 Mg C/ha). Total biomass accumulation followed similar patterns, with Pumlen Pat recording 515.99 ± 25.78 g/m2. Strong positive correlations emerged between carbon storage and water depth (r = 0.604, p < 0.001) and rainfall (r = 0.782, p < 0.001), while dissolved oxygen showed a negative correlation (r = − 0.608, p < 0.01). The calculated CO₂ equivalent storage was 476,861.90 ± 49,982.22 Mg in Pumlen Pat, 11,303.86 ± 1075.58 Mg in Lamphel Pat, and 65.86 ± 7.06 Mg in Zaimeng Pat. These findings underscore the importance of maintaining hydrological integrity and protecting larger wetland systems for optimal carbon sequestration while providing critical data for global carbon modeling efforts and informing international wetland conservation strategies.