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◆ ACS Sustainable Chemistry & Engineering2026-03-30· Bioavailability

Phosphorus Bioavailability in Hydrochars Derived from Different Solid Biowastes: Role of Humic Acid and Metal Species

Wei Ding, Yael Dubowski, Xuan Luo, Zichang Ma, Ling Tan, Yuyan Lin, Nan Wang, Zhiheng Luo, Fan Wang, Keke Xiao

原始摘要(英文原文)· Original abstract
Hydrothermal carbonization is a promising technology for the recovery of phosphorus (P) from solid biowastes. The poor P bioavailability of hydrochar limits its application as a fertilizer. This study assessed the P bioavailability of hydrochars derived from various solid biowastes, with a focus on the role of humic acid (HA) and metal species. The results demonstrated that Ca-related P minerals predominated in pig-manure-derived hydrochar (Hy-PM). Specifically, apatite P accounted for 57.6–96.8% of total P, and HCl-extractable P represented 17.7–93.2% of total P. In contrast, Fe/Al-related P minerals were dominant in sewage-sludge-derived hydrochar (Hy-SS). Within Hy-SS, nonapatite inorganic P constituted 38.2–48.7% of total P, while NaOH-extractable P accounted for 54.7–76.7% of total P. Additionally, Hy-PM exhibited a relatively higher HA content (61.8–122.4 mg/g C) compared to Hy-SS (28.8–116.1 mg/g C) at the same temperature. P bioavailability evaluation indicated that the highest concentrations of total P (19.0 mg/g), Ca (90.3 mg/L), and HA (352.2 mg/L C) were noted in the liquid phase of the mixture after phosphate-solubilizing microorganism incubation with Hy-PM produced at 100 °C. Further kinetic studies indicated that the P–Ca–HA complex exhibited considerable stability (−8.9 to −10.5 eV) with Ca at the central core, and Ca bound preferentially with P–OH, while HA reacted preferentially with P–O. The binding affinity of HA toward Ca 2+ (−1.1 to −2.7 eV) was higher than that toward H P O 4 2 ‐ (−1.0 to −1.5 eV). The formation of a P–Ca–HA complex enhanced the content of bioavailable P. As such, feedstock rich in Ca (e.g., PM) and promoting HA formation are recommended to achieve high P bioavailability of hydrochar during the HTC process.
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