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Soil phosphorus status and P nutrition strategies of European beech forests on carbonate compared to silicate parent material

  • Jörg Prietzel
  • , Jaane Krüger
  • , Klaus Kaiser
  • , Wulf Amelung
  • , Sara L. Bauke
  • , Michaela A. Dippold
  • , Ellen Kandeler
  • , Wantana Klysubun
  • , Hans Lewandowski
  • , Sebastian Löppmann
  • , Jörg Luster
  • , Sven Marhan
  • , Heike Puhlmann
  • , Marius Schmitt
  • , Maja B. Siegenthaler
  • , Jan Siemens
  • , Sandra Spielvogel
  • , Sabine Willbold
  • , Jan Wolff
  • , Friederike Lang
  • Albert-Ludwigs-Universität Freiburg
  • Martin Luther University Halle-Wittenberg
  • Rheinische Friedrich-Wilhelms-Universität Bonn
  • Forschungszentrum Jülich (FZJ)
  • Georg-August-Universität Göttingen
  • Hohenheim University
  • Synchrotron Light Research Institute
  • Christian-Albrechts-Universitat zu Kiel
  • Snow and Landscape Research WSL
  • Forstliche Versuchs- und Forschungsanstalt Baden-Württemberg
  • ETH Zürich
  • Justus-Liebig-Universität Gießen

Research output: Contribution to journalArticlepeer-review

25 Scopus citations

Abstract

Sustainable forest management requires understanding of ecosystem phosphorus (P) cycling. Lang et al. (2017) [Biogeochemistry,https://doi.org/10.1007/s10533-017-0375-0] introduced the concept of P-acquiring vs. P-recycling nutrition strategies for European beech (Fagus sylvatica L.) forests on silicate parent material, and demonstrated a change from P-acquiring to P-recycling nutrition from P-rich to P-poor sites. The present study extends this silicate rock-based assessment to forest sites with soils formed from carbonate bedrock. For all sites, it presents a large set of general soil and bedrock chemistry data. It thoroughly describes the soil P status and generates a comprehensive concept on forest ecosystem P nutrition covering the majority of Central European forest soils. For this purpose, an Ecosystem P Nutrition Index (ENIP) was developed, which enabled the comparison of forest P nutrition strategies at the carbonate sites in our study among each other and also with those of the silicate sites investigated by Lang et al. (2017). The P status of forest soils on carbonate substrates was characterized by low soil P stocks and a large fraction of organic Ca-bound P (probably largely Ca phytate) during early stages of pedogenesis. Soil P stocks, particularly those in the mineral soil and of inorganic P forms, including Al- and Fe-bound P, became more abundant with progressing pedogenesis and accumulation of carbonate rock dissolution residue. Phosphorus-rich impure, silicate-enriched carbonate bedrock promoted the accumulation of dissolution residue and supported larger soil P stocks, mainly bound to Fe and Al minerals. In carbonate-derived soils, only low P amounts were bioavailable during early stages of pedogenesis, and, similar to P-poor silicate sites, P nutrition of beech forests depended on tight (re)cycling of P bound in forest floor soil organic matter (SOM). In contrast to P-poor silicate sites, where the ecosystem P nutrition strategy is direct biotic recycling of SOM-bound organic P, recycling during early stages of pedogenesis on carbonate substrates also involves the dissolution of stable Ca-Porg precipitates formed from phosphate released during SOM decomposition. In contrast to silicate sites, progressing pedogenesis and accumulation of P-enriched carbonate bedrock dissolution residue at the carbonate sites promote again P-acquiring mechanisms for ecosystem P nutrition.

Original languageEnglish
Pages (from-to)39-72
Number of pages34
JournalBiogeochemistry
Volume158
Issue number1
DOIs
StatePublished - Feb 2022

UN SDGs

This output contributes to the following UN Sustainable Development Goals (SDGs)

  1. SDG 12 - Responsible Consumption and Production
    SDG 12 Responsible Consumption and Production
  2. SDG 15 - Life on Land
    SDG 15 Life on Land

Keywords

  • Bedrock impurity
  • Calcareous soils
  • Ecosystem nutrition
  • P acquiring
  • P recycling
  • Pedogenesis
  • Soil P forms

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