Research Fellow
- 51cg
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- Email Address
- saeed.karbin@abdn.ac.uk
- Office Address
- School/Department
- School of Biological Sciences
Latest Publications
Ecosystem-specific interaction effects on CO₂ and CH₄ fluxes during autumn freeze–thaw cycles in permafrost peatlands of the Great Hinggan Mountains, Northeast China
Environmental Research, vol. 305, no. Part 2, 125076Contributions to Journals: Articles- [ONLINE] DOI:
- [OPEN ACCESS]
Diversifying cropping with vetch enhances agroecosystem services under reduced nitrogen supply: Insights from field measurements and modeling evidence
Agricultural Systems, vol. 238, 104892Contributions to Journals: Articles- [ONLINE] DOI:
- [OPEN ACCESS]
Metagenomic insights into the influence of soil microbiome on greenhouse gas emissions from paddy fields under varying irrigation and fertilisation regimes
Journal of Environmental Management, vol. 393, 127129Contributions to Journals: Articles- [ONLINE] DOI:
Initiating conservation agriculture shows reduced soil CO2 emissions and improved soil aggregate stability in the first season in rainfed cropping in India
International Journal of Environmental Studies, vol. 79, no. 6, pp. 998-1014Contributions to Journals: Articles- [ONLINE] DOI:
- [OPEN ACCESS]
Estimating Greenhouse Gases Emissions from Karun-4 Water Reservoir by Applying G-res Model
Chapters in Books, Reports and Conference Proceedings: Conference Proceedings- [ONLINE]
- [OPEN ACCESS]
- Research
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Research Overview
My research examines the biogeochemistry of greenhouse gases in soils and possible mitigation strategies. I have worked extensively on measuring and modelling fluxes of carbon dioxide, methane, and hydrogen across soil-atmosphere interfaces in agricultural, grassland, and forest ecosystems. This work has spanned several countries and engaged diverse stakeholders including different national and international research institutions and NGOs such as Aga Khan Foundation and FAO.
Currently, I am developing process-based models to estimate the global soil uptake and release of hydrogen gas by soils. This project accounts for the biological and physical factors influencing hydrogen dynamics in soils, including diffusion, microbial oxidation, and release from nitrogen fixation. The goal is to produce a model suitable for linking soil hydrogen processes to atmospheric chemistry and climate. Quantifying these dynamics is crucial, as the use of hydrogen as a clean fuel relies on minimizing leakage and indirect warming effects.
Overall, my aim is to provide solutions for sustainable soil management that reduce greenhouse gas emissions and improve soil health. My research contributes quantitative understanding needed to predict climate feedbacks and inform mitigation strategies.
Research Areas
Research Specialisms
- Soil Science
- Mathematical Modelling
- Environmental Management
- Sustainable Agriculture and Landscape Development
Our research specialisms are based on the Higher Education Classification of Subjects (HECoS) which is , published under the licence.
Current Research
My present research centers on a building process-based model to estimate the global flux of hydrogen gas exchanged between soils and the atmosphere. Robustly modeling changes in tropospheric hydrogen requires representing the chemistry regulating airborne hydrogen concentrations along with its interactions with terrestrial sources and sinks. Using hydrogen as a clean substitute for fossil fuels would provide climate benefits by avoiding carbon dioxide emissions. However, any hydrogen leakage could indirectly warm the climate by altering atmospheric composition.
I am developing a model to estimate hydrogen uptake and release from soils on global scales over multi-decadal timeframes. This model incorporates the biological drivers of soil hydrogen cycling, including diffusion into soil profiles, microbial oxidation, and production during nitrogen fixation. By linking these process representations to atmospheric chemistry and transport, the goal is to predict how variability in soil hydrogen fluxes may feedback to climate under different scenarios. The model builds on established approaches for simulating soil organic matter coupled with empirical moisture and temperature responses. Overall, this work will quantify an important yet uncertain component of the terrestrial hydrogen budget.
Past Research
My previous works focused on sustainable soil management, measuring soil-atmosphere GHG fluxes and modelling soil organic carbon in different countries like Iran, Switzerland, India and Tajikistan with different national and international research institutions and NGOs such as Aga Khan Foundation and FAO.
- Publications
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Page 1 of 2 Results 1 to 10 of 12
Ecosystem-specific interaction effects on CO₂ and CH₄ fluxes during autumn freeze–thaw cycles in permafrost peatlands of the Great Hinggan Mountains, Northeast China
Environmental Research, vol. 305, no. Part 2, 125076Contributions to Journals: Articles- [ONLINE] DOI:
- [OPEN ACCESS]
Diversifying cropping with vetch enhances agroecosystem services under reduced nitrogen supply: Insights from field measurements and modeling evidence
Agricultural Systems, vol. 238, 104892Contributions to Journals: Articles- [ONLINE] DOI:
- [OPEN ACCESS]
Metagenomic insights into the influence of soil microbiome on greenhouse gas emissions from paddy fields under varying irrigation and fertilisation regimes
Journal of Environmental Management, vol. 393, 127129Contributions to Journals: Articles- [ONLINE] DOI:
Initiating conservation agriculture shows reduced soil CO2 emissions and improved soil aggregate stability in the first season in rainfed cropping in India
International Journal of Environmental Studies, vol. 79, no. 6, pp. 998-1014Contributions to Journals: Articles- [ONLINE] DOI:
- [OPEN ACCESS]
Estimating Greenhouse Gases Emissions from Karun-4 Water Reservoir by Applying G-res Model
Chapters in Books, Reports and Conference Proceedings: Conference Proceedings- [ONLINE]
- [OPEN ACCESS]
Water reservoirs are important sinks for greenhouse gases
Dams and Reservoirs, vol. 29, no. 4, pp. 128-132Contributions to Journals: Articles- [ONLINE] DOI:
Spatial micro-distribution of methanotrophic activity along a 120-year afforestation chronosequence
Plant and Soil, vol. 415, no. 1-2, pp. 13-23Contributions to Journals: Articles- [ONLINE] DOI:
- [ONLINE]
Effects of long-term CO2 enrichment on soil- atmosphere CH4 fluxes and the spatial micro-distribution of methanotrophic bacteria
PloS ONE, vol. 10, no. 7, e0131665Contributions to Journals: Articles- [ONLINE] DOI:
- [ONLINE]
Treeline soil warming does not affect soil methane fluxes and the spatial micro-distribution of methanotrophic bacteria
Soil Biology and Biochemistry, vol. 86, pp. 164-171Contributions to Journals: Articles- [ONLINE] DOI:
- [ONLINE]
Effects of Global Change on Soil Methane Dynamics
University of ZurichBooks and Reports: Other Reports- [OPEN ACCESS]
