Carbon sequestration and ecosystem services. Evidence from the functional urban area of Cagliari, Italy
DOI:
https://doi.org/10.6093/1970-9870/11994Keywords:
Carbon sequestration and storage, Pluvial flood retention, Land surface temperature, Habitat quality, Nature-based recreationAbstract
Carbon sequestration and storage, i.e., the process whereby carbon dioxide is removed from the atmosphere by plants and stored in natural reservoirs such as soil or water pools, is a key regulating ecosystem service (ES) that contributes to mitigating climate change and its impacts. Its positive and negative relationships with other ESs, i.e., respectively, synergies and trade-offs, are yet to be fully understood, especially at the urban level. Therefore, this study proposes a methodological approach that integrates ES modeling and mapping with inferential models, with a view to identifying and assessing the relationships between carbon sequestration and storage and other ESs. The implementation of the proposed approach in the context of the Functional Urban Area of Cagliari (Italy) puts in evidence a positive and significant relationship between carbon sequestration and storage and other regulating ESs, i.e., pluvial flood retention, local temperature regulation, and habitat quality; to the contrary, a negative but quantitatively negligible relationship is unveiled as far as the potential supply of nature-based recreation is concerned. Relevant planning implications are identified based on these outcomes, which highlights the significance and usefulness of the proposed approach for planners and policy makers.
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References
Anselin, L. (2003). Spatial econometrics. In Baltagi, B.H. (Ed.). A Companion to Theoretical Econometrics, 310-330, Oxford, United Kingdom: Blackwell Publishing.
Anselin, L., Syabri, I. & Kho, Y. (2006). GeoDa: An introduction to spatial data analysis. Geogr. Anal., 38 (1), 5-22. https://doi.org/10.1111/j.0016-7363.2005.00671.x
Anuo, C.O., Sleem, M., Fossum, B., Li, L., Cooper, J.A., Malakar, A., Maharjan, B. & Kaiser, M. (2024). Land use selectively impacts soil carbon storage in particulate, water-extractable, and mineral-associated forms across pedogenetic horizons. Geoderma, 449, 116992. https://doi.org/10.1016/j.geoderma.2024.116992
ARPAS (Agenzia Regionale per la Protezione dell’Ambiente della Sardegna) (2019). Carta del Curve Number Regionale [Regional Curve Number Map] - Retrieved: https://www.sardegnageoportale.it/documenti/40_615_20190329081206.pdf. Accessed May 6, 2025.
Aru, A., Baldaccini, P. & Vacca, A. (1991). Carta dei suoli della Sardegna alla scala 1:250.000 [1991 Soil map of Sardinia, scale 1:250,000] – Retrieved from: http://www.sardegnaportalesuolo.it/opendata/carta-dei-suoli-della-sardegna-alla-scala-1250000.html. Accessed May 6, 2025.
Bayley, D.T.I., Brickle, P., Brewin, P.E., Golding, N. & Pelembe, T. (2021). Valuation of Kelp Forest ecosystem service in the Falkland Islands: A case study integrating blue carbon sequestration potential. One Ecosyst., 6, e62811. https://doi.org/10.3897/oneeco.6.e62811
Byron, R.P. & Bera, A.K. (1983). Linearised estimation of nonlinear single equation functions. Int. Econ. Rev., 24 (1), 237–248. https://doi.org/10.2307/2526125
Cialdea, D., Leone, A. & Muscio, V. (2022). Landscape and the city. TeMA - Journal of Land Use, Mobility and Environment, 15(3), 415–429. https://doi.org/10.6093/1970-9870/9314
Cheshire, P. & Sheppard, S. (1995). On the price of land and the value of amenities. Econ. New Ser., 62 (246), 247–267. https://doi.org/10.2307/2554906
CICES (2018). Towards a Common International Classification of Ecosystem Services (CICES) for integrated environmental and economic accounting. Version 5.1 – Retrieved from: https://cices.eu/content/uploads/sites/8/2018/03/Finalised-V5.1_18032018.xlsx. Accessed May 6, 2025.
CLC (CORINE Land Cover) (2018) – Retrieved from: https://land.copernicus.eu/en/products/corine-land-cover/clc2018. Accessed May 6, 2025.
Dilling, L., Doney, S.C., Edmonds, J., Gurney, K.R., Harriss, R., Schimel, D., Stephens, B. & Stokes, G. (2003). The role of carbon cycle observations and knowledge in carbon management. Annu. Rev. Environ. Res., 28 (1), 521-558. https://doi.org/10.1146/annurev.energy.28.011503.163443
EEA (European Environment Agency) (2024). Greenhouse Gas Emissions from Land Use, Land Use Change and Forestry in Europe – Retrieved from: https://www.eea.europa.eu/en/analysis/indicators/greenhouse-gas-emissions-from-land. Accessed May 6, 2025.
EEA (European Environment Agency) (n.d.). Natura 2000 Viewer – Retrieved from: https://natura2000.eea.europa.eu/ Accessed May 6, 2025.
European Parliament (2024). Climate Change in Europe: Facts and Figures. Article 06-12-2024 – 15.13 20180703STO07123 – Retrieved from: https://www.europarl.europa.eu/pdfs/news/expert/2018/7/story/20180703STO07123/20180703STO07123_en.pdf. Accessed May 6, 2025.
Floris, M. & Zoppi, C. (2020). Ecosystem services and spatial planning: A study on the relationship between carbon sequestration and land-taking processes. Arch. Studi Urbani Reg., 51 (Suppl. S127), 11–33. https://doi.org/10.3280/ASUR2020-127-S1002
Fung, I. (2003). Carbon cycle. In R.A. Meyers (Ed.). Encyclopedia of Physical Science and Technology (Third Edition), 417-429, Amsterdam, The Netherlands: Elsevier Academic Press. https://doi.org/10.1016/b0-12-227410-5/00921-2
Gao, J. & O’Neill, B. (2020). Mapping global urban land for the 21st Century with data-driven simulations and shared socioeconomic pathways. Nat. Commun., 11, 2302. https://doi.org/10.1038/s41467-020-15788-7
Ghommem, M., Hajj, M.R. & Puri, I.K. (2012). Influence of natural and anthropogenic carbon dioxide sequestration on global warming. Ecol. Modell., 235-236, 1-7. https://doi.org/10.1016/j.ecolmodel.2012.04.005
Hain, M.P., Allen, K.A. & Turner, S.K. (2025). Earth system carbon cycle dynamics through time. In A. Anbar & D. Weis (Eds.). Treatise on Geochemistry (Third Edition), Volume 5, 381-418, Amsterdam, The Netherlands: Elsevier. https://doi.org/10.1016/b978-0-323-99762-1.00080-2
Hua, Y., Yan, D. & Liu, X. (2024). Assessing synergies and trade-offs between ecosystem services in highly urbanized area under different scenarios of future land use change. Environ. Sustain. Indic., 22, 100350. https://doi.org/10.1016/j.indic.2024.100350
INFC (Inventario Nazionale delle Foreste e dei serbatoi forestali di Carbonio) [National Inventory of Forests and forest Carbon pools] (n.d.). – Retrieved from: https://www.inventarioforestale.org/en/. Accessed May 6, 2025.
Isola, F., Lai, S., Leone, F. & Zoppi, C. (2024). Urban green infrastructure and ecosystem service supply: A study concerning the Functional Urban Area of Cagliari, Italy. Sustainability, 16(19), 8628. https://doi.org/10.3390/su16198628
ISTAT (Istituto Nazionale di Statistica) (2025). Dati per Sezione di Censimento [Data by Census Tract] – Retrieved from: https://www.istat.it/it/archivio/285267. Accessed May 6, 2025.
Kambale, J.B. & Tripathi, V.K. (2010). Biotic and abiotic processes as a carbon sequestration strategy. J. Environ. Res. Dev., 5(1), 240-251 – Retrieved from: https://www.researchgate.net/publication/281277853_BIOTIC_AND_ABIOTIC_ PROCESSES_AS_A_CARBON_SEQUESTRATION_STRATEGY/link/55deab7108ae45e825d3a2ae/download?_tp=eyJjb250ZXh0Ijp7InBhZ2UiOiJwdWJsaWNhdGlvbiIsInByZXZpb3VzUGFnZSI6bnVsbH19. Accessed May 6, 2025.
Kinnunen, A., Talvitie, I., Ottelin, J., Heinonen, J. & Junnila, S. (2022). Carbon sequestration and storage potential of urban residential environment – A review. Sustain. Cities Soc., 84, 104027. https://doi.org/10.1016/j.scs.2022.104027
Klingebiel, A.A. & Montgomery, P.H. (1961). Land capability classification. USDA Agricultural Handbook 210, Washington, DC United States: US Government Printing Office – Retrieved from: https://www.govinfo.gov/content/pkg/GOVPUB-A-PURL-gpo20777/pdf/GOVPUB-A-PURL-gpo20777.pdf. Accessed May 6, 2025.
Kumar, R., Bhatnagar, P.R., Kakade, V. & Dobhal, S. (2020). Tree plantation and soil water conservation enhances climate resilience and carbon sequestration of agro ecosystem in semi-arid degraded ravine lands. Agr. Forest. Meteorol., 282-283, 107857. https://doi.org/10.1016/j.agrformet.2019.107857
Lai, S. & Leone, F. (2017). Bridging biodiversity conservation objectives with landscape planning through green infrastructures: A case study from Sardinia, Italy. In Gervasi, O., Murgante, B., Misra, S., Borruso, G., Torre, C.M., Rocha, A.M.A.C., Taniar, D., Apduhan, B.O., Stankova, E. & Cuzzocrea, A. (Eds.). 17th International Conference on Computational Science and Its Applications (ICCSA 2017), Lecture Notes in Computer Sciences Series. (LNCS), Volume 10409, 456-472, Cham, Switzerland: Springer. https://doi.org/10.1007/978-3-319-62407-5_32
Lai, S., Leone, F. & Zoppi, C. (2020). Land surface temperature and land cover dynamics. A study related to Sardinia, Italy. TeMA - Journal of Land Use, Mobility and Environment, 13(3), 329-351. https://doi.org/10.6092/1970-9870/7143
Lal, R. (2008). Carbon sequestration. Philos. Trans. R. Soc. B, 363 (1492), 815-830. https://doi.org/10.1098/rstb.2007.2185
Liquete, C., Kleeschulte, S., Dige, G., Maes, J., Grizzetti, B., Olah, B. & Zulian, G. (2015). Mapping green infrastructure based on ecosystem services and ecological networks: A Pan-European case study. Environ. Sci. Policy, 54, 268-280. https://doi.org/10.1016/j.envsci.2015.07.009
Marando, F., Heris, M.P., Zulian, G., Udías, A., Mentaschi, L., Chrysoulakis, N., Parastatidis, D. & Maes, J. (2022). Urban heat island mitigation by green infrastructure in European Functional Urban Areas. Sustain. Cities Soc., 77, 103564. https://doi.org/10.1016/j.scs.2021.103564
Mihalakakou, G., Souliotis, M., Papadaki, M., Menounou, P.; Dimopoulos, P., Kolokotsa, D., Paravantis, J.A., Tsangrassoulis, A., Panaras, G., Giannakopoulos, E. & Papaefthimiou S. (2023). Green roofs as a nature-based solution for improving urban sustainability: Progress and perspectives. Renew. Sust. Energ. Rev., 180, 113306. https://doi.org/10.1016/j.rser.2023.113306
Mobaraki, O. (2023). Spatial analysis of green space use in Tabriz metropolis, Iran. TeMA - Journal of Land Use, Mobility and Environment, (2), 55–73. https://doi.org/10.6093/1970-9870/10117
Momo, M. & Devi, T.T. (2022). Assessment of land surface temperature and carbon sequestration using remotely sensed satellite data in the Imphal-West District, Manipur, India. J. Earth Syst. Sci., 131, 229. https://doi.org/10.1007/s12040-022-01944-8
NCP (Natural Capital Project, Stanford University) (n.d.). What is InVEST? – Retrieved from: https://naturalcapitalproject. stanford.edu/software/invest. Accessed May 6, 2025.
NOAA (National Oceanic and Atmospheric Administration) (n.d.). What is the carbon cycle? – Retrieved from: https://oceanservice.noaa.gov/facts/carbon-cycle.html#transcript. Accessed May 6, 2025.
Olah, G.A., Surya Prakash, G.K. & Goeppert, A. (2011). Anthropogenic carbon cycle. J. Am. Chem. Soc., 133 (33), 12881-12898. https://doi.org/10.1021/ja202642y
Pan, C., Shrestha, A., Innes, J.L., Zhou, G., Li, N., Li, J., He, Y., Sheng, C., Niles, J-O. & Wang, G. (2022). Key challenges and approaches to addressing barriers in forest carbon offset projects. J. For. Res., 33, 1109–1122. https://doi.org/10.1007/s11676-022-01488-z
Pantaloni, M., Botticini, F. & Marinelli, G. (2024). Assessment of urban green spaces proximity to develop the green infrastructure strategy. An Italian case study. TeMA - Journal of Land Use, Mobility and Environment, (3), 67–81. https://doi.org/10.6093/1970-9870/10919
Pilogallo, A., Saganeiti, L., Scorza, F. & Murgante, B. (2019). Ecosystem Services’ Based Impact Assessment for Low Carbon Transition Processes. TeMA - Journal of Land Use, Mobility and Environment, 12 (2), 127–138. https://doi.org/10.6092/1970-9870/6117
RAS (Regione Autonoma della Sardegna) (n.d.a). Carta dell’uso del suolo [Land-use map] – Retrieved from: https://www.sardegnageoportale.it/index.php?xsl=2420&s=40&v=9&c=14480&es=6603&na=1&n=100&esp=1&tb=14401. Accessed May 6, 2025.
RAS (Regione Autonoma della Sardegna) (n.d.b). Carta delle unità delle terre e di capacità d’uso dei suoli [Map of land units and land use capacity] - Retrieved from: https://www.sardegnageoportale.it/index.php?xsl=2420&s=40&v=9&c=14481&es=6603&na=1&n=100&esp=1&tb=14401. Accessed May 6, 2025.
RAS (Regione Autonoma della Sardegna) (n.d.c). Modelli digitali del terreno e delle superfici [Digital terrain and surface models] - Retrieved from: https://www.sardegnageoportale.it/areetematiche/modellidigitalidielevazione/. Accessed May 6, 2025.
RAS (Regione Autonoma della Sardegna) (n.d.d). Carta della Permeabilità dei substrati della Sardegna [Permeability map of the substrates of Sardinia] – Retrieved from: https://www.sardegnageoportale.it/index.php?xsl=2420&s=40&v=9&c=94083&es=6603&na=1&n=100&esp=1&tb=14401. Accessed May 6, 2025.
RAS (Regione Autonoma della Sardegna) (n.d.e). Idrologia e Idrometria [Hydrology and Hydrometry] – Retrieved from: https://www.sardegnaambiente.it/index.php?xsl=611&s=21&v=9&c=93749&na=1&n=10. Accessed May 6, 2025.
RAS (Regione Autonoma della Sardegna) (n.d.f). Database Geotopografico (DBGT) [Geotopographic Database (DBGT)] – Retrieved from: https://www.sardegnageoportale.it/areetematiche/databasegeotopografico/. Accessed May 6, 2025.
RAS (Regione Autonoma della Sardegna) (n.d.g). Aree tutelate [Protected areas] - Retrieved from: https://www.sardegnageoportale.it/areetematiche/areetutelate/. Accessed May 6, 2025.
Raupach, M.R. (2013). Ecosystem services and the global carbon cycle. In Lal, R., Lorenz, K., Hüttl, R., Schneider, B. & von Braun, J. (Eds.). Ecosystem Services and Carbon Sequestration in the Biosphere, 155-181, Dordrecht, Germany: Springer. https://doi.org/10.1007/978-94-007-6455-2_8
Sklenicka, P., Molnarova, K., Pixova, K.C. & Salek, M.E. (2013). Factors affecting farmlands in the Czech Republic. Land Use Policy, 30(1), 130–136. https://doi.org/10.1016/j.landusepol.2012.03.005
Smith, P. (2012). Soils and climate change. Curr. Opin. Environ. Sustain., 4 (5), 539–544. https://doi.org/10.1016/j.cosust.2012.06.005
Stewart, P.A. & Libby, L.W. (1998). Determinants of farmland value: The case of DeKalb County, Illinois. Rev. Agric. Econ., 20(1), 80–95 – Retrieved from: https://www.jstor.org/stable/1349535. Accessed May 6, 2025.
Urban Atlas (2018) – Retrieved from: https://land.copernicus.eu/en/products/urban-atlas#tab=land_coverland_use. Accessed May 6, 2025.
USDA-NRCS (Unites States Department of Agriculture-Natural Resources Conservation Service) (2009). Hydrologic soil groups. Chapter 7 in National Engineering Handbook. Part 630 – Hydrology - Retrieved from: https://www.hydrocad.net/neh/630ch7.pdf. Accessed May 6, 2025.
USGS (United States Geological Survey) (n.d.). EarthExplorer – Retrieved from: https://earthexplorer.usgs.gov/. Accessed May 6, 2025.
Wang, J., Xiang, Z., Wang, W., Chang, W. & Wang, Y. (2021). Impacts of strengthened warming by urban heat island on carbon sequestration of urban ecosystems in a subtropical city of China. Urban Ecosyst., 24, 1165–1177. https://doi.org/10.1007/s11252-021-01104-8
Wolman, A.L. & Couper, E.A. (2003). Potential consequences of linear approximation in economics. Federal Reserve Bank of Richmond Economic Quarterly, 11, 51–67 - Retrieved from: https://www.richmondfed.org/-/media/RichmondFedOrg/publications/research/economic_quarterly/2003/winter/pdf/wolman.pdf. Accessed May 6, 2025.
Zehnder, A.J.B. (1982). The carbon cycle. In O. Hutzinger (Ed.). The Natural Environment and the Biogeochemical Cycles. The Handbook of Environmental Chemistry, Volume 1, Part B, 83-110, Berlin Heidelberg, Germany: Springer-Verlag. https://doi.org/10.1007/978-3-540-38597-4_4
Zoppi, C. & Lai, S. (2014). Land-taking processes: An interpretive study concerning an Italian Region. Land Use Policy, 36, 369-380. https://doi.org/10.1016/j.landusepol.2013.09.011
Zoppi, C., Argiolas, M. & Lai, S. (2015). Factors influencing the value of houses: estimates for the city of Cagliari, Italy. Land Use Policy, 42, 367–380. https://doi.org/10.1016/j.landusepol.2014.08.012
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