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March 14, 2026AgriEngineering2 citationsOpen Access

Hydrochar for Soil Management Within a Waste-to-Resource Framework: From Characteristics to Agri-Environmental Implications

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LVLaís Helena Sousa VieiraFSFrancisca Gleiciane da SilvaLFLaís Gomes Fregolente

Key Points

  • To review advances in hydrochar production and its agri-environmental implications for sustainable soil management.
  • Synthesis of recent studies on hydrochar production and characterization.
  • Examination of feedstocks including agricultural residues, sewage sludge, and food waste.
  • Discussion of application rates and results in greenhouse conditions.
  • Hydrochar impacts soil pH, cation exchange capacity, water retention, and phosphorus availability positively.
  • Plant responses to hydrochar vary by application rate, processing conditions, and soil characteristics.
  • Concerns about phytotoxic compounds in hydrochar derived from waste are noted.

Abstract

The growing demand for sustainable soil management strategies has intensified interest in hydrochar (HC), a waste-derived amendment produced via hydrothermal carbonization (HTC). This review synthesizes recent advances in HC production, characterization, and agri-environmental applications within a waste-to-resource framework. It covers studies conducted mainly over the last decade, encompassing a wide range of feedstocks, including agricultural residues, sewage sludge, animal manures, and food waste. HTC is typically performed at 130–280 °C under autogenous pressure (2–15 MPa), generating HCs with low intrinsic surface area (<50 m2g−1) and oxygen-containing functional groups that govern nutrient dynamics and soil interactions. Reported application rates vary broadly between 10 and 60 t ha−1, with most experiments conducted under greenhouse conditions. Positive effects on soil pH, cation exchange capacity, water retention, and phosphorus availability are frequently observed. However, plant responses vary according to the type of stimulation promoted by HC, as well as its processing conditions, application rates, and the soil characteristics in which it is applied. Advanced molecular-level analyses (e.g., FT-ICR-MS, GC-MS, and 13C-NMR) have provided mechanistic insights into carbon stability, nutrient release, and interaction with soil organic matter. Reusing HTC process water offers an additional pathway for nutrient recovery, although concerns about phytotoxic compounds remain. Despite promising short-term results, long-term field evaluations and standardized assessment protocols are still limited. This review integrates structural, functional and agri-environmental perspectives to identify critical knowledge gaps and guide the optimized and context specific use of hydrochar in sustainable agricultural systems. At the same time, it emphasizes its role in advancing carbon sequestration and in operationalizing resource-circular strategies, thereby underscoring its broader practical and strategic relevance.

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Cite This Study

Vieira et al. (2026) studied this question.

synapsesocial.com/papers/69b4b9eb18185d8a39802154https://doi.org/10.3390/agriengineering8030108
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