Regional-scale, long-term modelling of Miscanthus phytomanagement with biostimulant application on Ni contaminated and geogenically enriched marginal lands in Emilia-Romagna under climate change scenarios

Phytomanagement with perennial energy crops can combine biomass production with progressive metal uptake from marginal and contaminated lands, but its large-scale performance requires long-term assessment. We evaluated Miscanthus × giganteus-based phytomanagement of contaminated and geogenically Ni-enriched soils in Emilia–Romagna (Italy), focusing on above-ground biomass (AGB) production and bioavailable Ni uptake. ARUNGRO was extended with (i) dose–response functions for humic acid-based biostimulants combined with mycorrhizae (MHS) and (ii) a soil–plant Ni mass balance describing uptake and depletion of the initial bioavailable Ni pool. The model was applied at 500-m resolution over 2850 ha under baseline conditions and two emission pathways (SSP1–RCP2.6 and SSP3–RCP8.5) from a single GCM (GFDL-ESM4). Control and MHS management were compared for AGB, Ni uptake, depletion times and costs. MHS increased mean AGB by 12.6% under SSP1–RCP2.6 and 15.5% under SSP3–RCP8.5. Regional cumulative Ni uptake was estimated to increase from approximately 3000 Mg at 15 years to 4900 Mg at 90 years, while costs ranged from 6.2 to 18.3 € kg −1 Ni. MHS had little effect on long-term cumulative Ni uptake but reduced T 0 . 5 by approximately 7–9% and T 0 . 95 by about 10%. These depletion indicators are conditional on the assumption that the bioavailable Ni pool is not replenished from less labile soil fractions. By coupling biostimulant dose–response functions with soil–plant Ni dynamics within a process-based energy-crop model, this study provides a regionally scalable framework for assessing biomass production and phytomanagement dynamics under heterogeneous soil and climate conditions.

Authors

Institutions

Publication Details

Journal
Biomass and Bioenergy
Published
2026-10-07
DOI
https://doi.org/10.1016/j.biombioe.2026.110167
Primary Topic
Bioenergy crop production and management
Type
article
Field-Weighted Citation Impact
0.00
Controls
|||
ALL TIME
JAN
FEB
MAR
APR
MAY
JUN
JUL
AUG
SEP
OCT
article

Regional-scale, long-term modelling of Miscanthus phytomanagement with biostimulant application on Ni contaminated and geogenically enriched marginal lands in Emilia-Romagna under climate change scenarios

G. Cappelli, Walter Zegada‐Lizarazu, Andrea Monti, Pietro Peroni
Biomass and Bioenergy
Bioenergy crop production and management
article

Regional-scale, long-term modelling of Miscanthus phytomanagement with biostimulant application on Ni contaminated and geogenically enriched marginal lands in Emilia-Romagna under climate change scenarios

G. Cappelli, Walter Zegada‐Lizarazu, Andrea Monti, Pietro Peroni
article en

Abstract

Phytomanagement with perennial energy crops can combine biomass production with progressive metal uptake from marginal and contaminated lands, but its large-scale performance requires long-term assessment. We evaluated Miscanthus × giganteus-based phytomanagement of contaminated and geogenically Ni-enriched soils in Emilia–Romagna (Italy), focusing on above-ground biomass (AGB) production and bioavailable Ni uptake. ARUNGRO was extended with (i) dose–response functions for humic acid-based biostimulants combined with mycorrhizae (MHS) and (ii) a soil–plant Ni mass balance describing uptake and depletion of the initial bioavailable Ni pool. The model was applied at 500-m resolution over 2850 ha under baseline conditions and two emission pathways (SSP1–RCP2.6 and SSP3–RCP8.5) from a single GCM (GFDL-ESM4). Control and MHS management were compared for AGB, Ni uptake, depletion times and costs. MHS increased mean AGB by 12.6% under SSP1–RCP2.6 and 15.5% under SSP3–RCP8.5. Regional cumulative Ni uptake was estimated to increase from approximately 3000 Mg at 15 years to 4900 Mg at 90 years, while costs ranged from 6.2 to 18.3 € kg −1 Ni. MHS had little effect on long-term cumulative Ni uptake but reduced T 0 . 5 by approximately 7–9% and T 0 . 95 by about 10%. These depletion indicators are conditional on the assumption that the bioavailable Ni pool is not replenished from less labile soil fractions. By coupling biostimulant dose–response functions with soil–plant Ni dynamics within a process-based energy-crop model, this study provides a regionally scalable framework for assessing biomass production and phytomanagement dynamics under heterogeneous soil and climate conditions.

Biomass and BioenergyVol. 217
Research Centre for Cereal and Industrial Crops (IT), University of Bologna (IT)
Openalex Percentile: Top 9%
Bioenergy crop production and management
AI Navigator

Ask Laika to Summarize, Analyze, and Connect papers live on the map.

Summarize Papers & Methodologies

Extract key findings, datasets, and comparative methods across publications.

Benchmark Rankings & Visual Analytics

Rank top research institutions, authors, funders, topics, and journals by Field-Weighted Citation Impact (FWCI) and paper volume with instant charts.

Connect Distant Disciplines

Bridge topological clusters on the map to find hidden collaborative intersections.