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February 21, 2026ACS Sustainable Chemistry & Engineering2 citations

Hydrothermal Humification of Wetland Biomass: Coproduction of Artificial Humic Acid and Endogenous Potassium-Driven Fulvic Acid

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JWJunxia WangSDShicheng DongHFHaiguang Fu

Key Points

  • The aim is to develop a process to convert K-rich biomass into humic and fulvic acids to address soil nutrient depletion.
  • Developed a hydrothermal humification process using Canna indica biomass.
  • Examined the effects of different alkali concentrations, particularly NaOH, on humic and fulvic acid yield.
  • Conducted spectroscopic analyses to identify coordination sites for potassium binding.
  • Achieved the highest humic acid yield of 17.91% at 180 °C with 1 mol·L–1 NaOH.
  • Released over 81.54%–91.36% of potassium into the liquid phase.
  • Identified carboxylate groups as primary sites for potassium retention in fulvic acid.

Abstract

The degradation of soil organic matter and nutrient depletion pose challenges for global agricultural sustainability. In this work, a hydrothermal humification (HTH) process was developed to simultaneously address these challenges by converting K-rich Canna indica biomass waste into artificial humic acids (HA) and K-enriched fulvic acids (FA-K) without external potassium sources. The results revealed that alkali concentration was the dominant factor, with 1 mol·L–1 NaOH yielding the highest HA yield (17.91% at 180 °C) by promoting lignocellulose depolymerization and polycondensation. Increasing alkalinity (≥1 mol·L–1 NaOH) promoted the migration of endogenous K, releasing over 81.54%–91.36% into the liquid phase. The released K+ preferentially associated with liquid-phase fulvic acid (LFA), forming −COO-K coordination complexes and reaching concentrations of 50.74–53.62 mg·g–1 under 1 mol·L–1 NaOH conditions. Spectroscopic analyses identified carboxylate groups (−COO–) as the primary coordination sites responsible for K retention within the oxidized aliphatic frameworks of LFA. A dual-pathway mechanism was proposed in which the lignin-derived aromatics polymerized into HA, while lipid/carbohydrate hydrolysates assembled into carboxyl-rich LFA acting as efficient potassium carriers. This study establishes a sustainable waste-to-resource approach for the concurrent production of humic substances and organic K fertilizers, offering a feasible pathway toward resource circularity and enhanced agricultural resilience.

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Cite This Study

Wang et al. (2026) studied this question.

synapsesocial.com/papers/69994b64873532290d01f97dhttps://doi.org/10.1021/acssuschemeng.5c13878
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