Soil carbon and nitrogen changes due to soil particles redistribution caused by photovoltaic array

There is an inevitable relationship between the size of soil particles and the distribution of organic matter. The soil texture in desert photovoltaic areas is poor, with variations in soil particle size and organic matter. This study explores the heterogeneity of soil particle size and organic matt...

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Main Authors: Feiyan Zhao, Zhongju Meng, Yang Liu, Peng Li, Guodong Tang
Format: Article
Language:English
Published: Frontiers Media S.A. 2025-06-01
Series:Frontiers in Environmental Science
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Online Access:https://www.frontiersin.org/articles/10.3389/fenvs.2025.1552447/full
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author Feiyan Zhao
Zhongju Meng
Yang Liu
Peng Li
Peng Li
Guodong Tang
author_facet Feiyan Zhao
Zhongju Meng
Yang Liu
Peng Li
Peng Li
Guodong Tang
author_sort Feiyan Zhao
collection DOAJ
description There is an inevitable relationship between the size of soil particles and the distribution of organic matter. The soil texture in desert photovoltaic areas is poor, with variations in soil particle size and organic matter. This study explores the heterogeneity of soil particle size and organic matter distribution at different zonal scales, aiming to clarify the impact of photovoltaic array construction on microtopography and, consequently, on these indicators. This will facilitate precise vegetation restoration based on the distribution of nutrients within the region. Baced on the Kubuqi Desert photovoltaic area as the research area, the soil particle size in the 0–30 cm soil layer and the distribution of soil organic matter in the main particle size range (<250 μm, <500 μm) in this area were analyzed. Fine sand (particle size 100–250 μm) was the main component of the soil; the carbon and nitrogen stocks in the upper 0–30 cm of soil diminished linearly with escalating wind speed gradient, from 70.76 Mg C ha−1 to 53.82 Mg C ha−1 and from 13.96 Mg N ha−1 to 8.12 Mg N ha−1. The total carbon and nitrogen levels in the two soil particle sizes, together with their contribution to total soil organic carbon, diminished as the wind speed gradient intensified, with the reduction in organic carbon content becoming stronger. The organic carbon content of soil particles <250 μm accounted for 63.7%–98.6% of the total soil organic carbon, while that of particles 250μm–500 μm only accounted for 3.32%–33.34%. SOC was significantly higher in the 0–5 cm layer than in the 5–30 cm layer in all areas of the photovoltaic array. Wind causes changes in sand particle transport in PV arrays, and may also alter the microclimate environment leading to differences in soil decomposition cycling processes, which can exhibit uneven organic carbon and nitrogen distribution between particles. Our research demonstrates the internal distribution of soil carbon and nitrogen reserves in each region of the photovoltaic array, establishing a robust foundation for subsequent vegetation restoration and plant species selection in each region, thereby implementing the “photovoltaic + ecological” governance model.
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publisher Frontiers Media S.A.
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spelling doaj-art-a5c6e6e0e3f44e968f67d5c7e2f5b4862025-08-20T02:06:06ZengFrontiers Media S.A.Frontiers in Environmental Science2296-665X2025-06-011310.3389/fenvs.2025.15524471552447Soil carbon and nitrogen changes due to soil particles redistribution caused by photovoltaic arrayFeiyan Zhao0Zhongju Meng1Yang Liu2Peng Li3Peng Li4Guodong Tang5College of Desert Control Science and Engineering, Inner Mongolia Agricultural University, Hohhot, ChinaCollege of Desert Control Science and Engineering, Inner Mongolia Agricultural University, Hohhot, ChinaInner Mongolia Water Conservancy Research Institute, Hohhot, ChinaCollege of Desert Control Science and Engineering, Inner Mongolia Agricultural University, Hohhot, ChinaThe Comprehensive Support Center of Audit Bureau of Ulanqab City, Ulanqab, ChinaInstitute of Water Resources for Pastoral Area Ministry of Water Resources, Hohhot, ChinaThere is an inevitable relationship between the size of soil particles and the distribution of organic matter. The soil texture in desert photovoltaic areas is poor, with variations in soil particle size and organic matter. This study explores the heterogeneity of soil particle size and organic matter distribution at different zonal scales, aiming to clarify the impact of photovoltaic array construction on microtopography and, consequently, on these indicators. This will facilitate precise vegetation restoration based on the distribution of nutrients within the region. Baced on the Kubuqi Desert photovoltaic area as the research area, the soil particle size in the 0–30 cm soil layer and the distribution of soil organic matter in the main particle size range (<250 μm, <500 μm) in this area were analyzed. Fine sand (particle size 100–250 μm) was the main component of the soil; the carbon and nitrogen stocks in the upper 0–30 cm of soil diminished linearly with escalating wind speed gradient, from 70.76 Mg C ha−1 to 53.82 Mg C ha−1 and from 13.96 Mg N ha−1 to 8.12 Mg N ha−1. The total carbon and nitrogen levels in the two soil particle sizes, together with their contribution to total soil organic carbon, diminished as the wind speed gradient intensified, with the reduction in organic carbon content becoming stronger. The organic carbon content of soil particles <250 μm accounted for 63.7%–98.6% of the total soil organic carbon, while that of particles 250μm–500 μm only accounted for 3.32%–33.34%. SOC was significantly higher in the 0–5 cm layer than in the 5–30 cm layer in all areas of the photovoltaic array. Wind causes changes in sand particle transport in PV arrays, and may also alter the microclimate environment leading to differences in soil decomposition cycling processes, which can exhibit uneven organic carbon and nitrogen distribution between particles. Our research demonstrates the internal distribution of soil carbon and nitrogen reserves in each region of the photovoltaic array, establishing a robust foundation for subsequent vegetation restoration and plant species selection in each region, thereby implementing the “photovoltaic + ecological” governance model.https://www.frontiersin.org/articles/10.3389/fenvs.2025.1552447/fullphotovoltaicsoil particle-size fractionsoil organic Cwind speedarid desert region
spellingShingle Feiyan Zhao
Zhongju Meng
Yang Liu
Peng Li
Peng Li
Guodong Tang
Soil carbon and nitrogen changes due to soil particles redistribution caused by photovoltaic array
Frontiers in Environmental Science
photovoltaic
soil particle-size fraction
soil organic C
wind speed
arid desert region
title Soil carbon and nitrogen changes due to soil particles redistribution caused by photovoltaic array
title_full Soil carbon and nitrogen changes due to soil particles redistribution caused by photovoltaic array
title_fullStr Soil carbon and nitrogen changes due to soil particles redistribution caused by photovoltaic array
title_full_unstemmed Soil carbon and nitrogen changes due to soil particles redistribution caused by photovoltaic array
title_short Soil carbon and nitrogen changes due to soil particles redistribution caused by photovoltaic array
title_sort soil carbon and nitrogen changes due to soil particles redistribution caused by photovoltaic array
topic photovoltaic
soil particle-size fraction
soil organic C
wind speed
arid desert region
url https://www.frontiersin.org/articles/10.3389/fenvs.2025.1552447/full
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AT zhongjumeng soilcarbonandnitrogenchangesduetosoilparticlesredistributioncausedbyphotovoltaicarray
AT yangliu soilcarbonandnitrogenchangesduetosoilparticlesredistributioncausedbyphotovoltaicarray
AT pengli soilcarbonandnitrogenchangesduetosoilparticlesredistributioncausedbyphotovoltaicarray
AT pengli soilcarbonandnitrogenchangesduetosoilparticlesredistributioncausedbyphotovoltaicarray
AT guodongtang soilcarbonandnitrogenchangesduetosoilparticlesredistributioncausedbyphotovoltaicarray