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Soil and vegetation responses to biochar application in terms of its feedback on carbon sequestration under different environmental conditions—LiDels model overview

Bibliographic Data

ID15548320
AuthorsMikita Maslouski (0009-0003-2089-4996, Universität Hamburg, corresponding author), Annette Eschenbach (0000-0002-8778-1342, Universität Hamburg), Christian Beer (0000-0002-5377-3344, Universität Hamburg), Simon Thomsen (0000-0002-4796-8874), Philipp Porada (0000-0002-5072-0220, Universität Hamburg)
Year2025
Volume20
Issue4
Pages044020-044020
Publication date2025-03-12
Peer ReviewedYes
Open AccessYes
TypeARTICLE
VenueEnvironmental Research Letters (JOURNAL)
Journal identifiersISSN: 1748-9326 • E-ISSN: 1748-9326
PublisherIOP Publishing (PUBLISHER • GB)
DOI10.1088/1748-9326/adbfa6
OpenAlexW4408348091
LanguageEN
Citations received1
References cited62

Biochar application to soil shows promise for enhancing soil properties, increasing crop yields, improving water retention, and promoting carbon sequestration. While the direct effects of biochar on soil properties have been studied to some extent, the overall impact on ecosystem carbon balance remains uncertain, as field and lab studies typically do not account for interactions with vegetation. The LiDELS (LiBry-DETECT Layer Scheme) model offers a process-based approach to assess these soil-vegetation interactions and the potential for carbon sequestration in response to biochar application under diverse environmental conditions. This study presents an overview of the LiDELS model and its application to a sandy soil profile under the climate conditions of northern Germany. LiDELS simulates the impacts of biochar on key soil functions, including water retention, thermal properties, evapotranspiration rates, and net primary production (NPP). Model validation shows strong agreement with observed data for soil moisture, temperature, and CO 2 flux, confirming LiDELS’s applicability across varying soil textures, vegetation types, and biochar treatments. Results indicate that biochar application to sandy soil in Hamburg enhances soil water availability by 35%, increases NPP by 6%, raises soil CO 2 by 21%, and has no significant impact on soil respiration or soil temperature. LiDELS thus represents a valuable predictive tool for evaluating environmental feedback of biochar in agriculture and carbon management, supporting sustainable land use practices

Agroforestry · Biochar · Carbon dioxide · Carbon fibers · Carbon sequestration · Earth science · Soil carbon · Soil water · Vegetation (pathology · Waste management · Bioenergy crop production and management · Computer Science · Engineering · Environmental Science · Soil Carbon and Nitrogen Dynamics · Ecology · Geology · Soil Science

  • Long-term carbon dioxide removal potential from the application of wood biochar and basanite rock powder in sandy soil using the LiDelsv2 process-based modeling approach

    Open Access•Mikita Maslouski, Maria Seedtke et al.•Environmental Research Letters•2025

  • A biochemical model of photosynthetic CO2 assimilation in leaves of C3 species

    Open Access•Graham D Farquhar, Susanne von Caemmerer et al.•Planta•1980

  • A Closed‐form Equation for Predicting the Hydraulic Conductivity of Unsaturated Soils

    Open Access•Martinus Th van Genuchten•Soil Science Society of America…•1980

  • The ERA5 global reanalysis

    Open Access•Hans Hersbach, Bill Bell et al.•Quarterly Journal of the Royal…•2020

Unique citing works1
Citations per year1
Citation span2025 - 2025 (1)
Citation velocityrecent
Highly citedNo
Citation typesNeutral: 1

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