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Anthropogenic ocean acidification over the twenty-first century and its impact on calcifying organisms

  • James C. Orr
  • , Victoria J. Fabry
  • , Olivier Aumont
  • , Laurent Bopp
  • , Scott C. Doney
  • , Richard A. Feely
  • , Anand Gnanadesikan
  • , Nicolas Gruber
  • , Akio Ishida
  • , Fortunat Joos
  • , Robert M. Key
  • , Keith Lindsay
  • , Ernst Maier-Reimer
  • , Richard Matear
  • , Patrick Monfray
  • , Anne Mouchet
  • , Raymond G. Najjar
  • , Gian Kasper Plattner
  • , Keith B. Rodgers
  • , Christopher L. Sabine
  • Jorge L. Sarmiento, Reiner Schlitzer, Richard D. Slater, Ian J. Totterdell, Marie France Weirig, Yasuhiro Yamanaka, Andrew Yool
  • Lab. Sci. du Climat et de l'Environ.
  • California State University San Marcos
  • Laboratoire LOCEAN-IPSL
  • Woods Hole Oceanographic Institution
  • National Oceanic and Atmospheric Administration
  • University of California at Los Angeles
  • Japan Agency for Marine-Earth Science and Technology
  • University of Bern
  • Princeton University
  • National Center for Atmospheric Research
  • Max Planck Institute for Meteorology
  • and Antarctic Climate and Ecosystems Cooperative Research Centre
  • CNRS
  • University of Liege
  • Pennsylvania State University
  • Alfred Wegener Institute - Helmholtz Centre for Polar and Marine Research
  • National Oceanography Centre
  • Met Office

Research output: Contribution to journalArticlepeer-review

3851 Scopus citations

Abstract

Today's surface ocean is saturated with respect to calcium carbonate, but increasing atmospheric carbon dioxide concentrations are reducing ocean pH and carbonate ion concentrations, and thus the level of calcium carbonate saturation. Experimental evidence suggests that if these trends continue, key marine organisms - such as corals and some plankton - will have difficulty maintaining their external calcium carbonate skeletons. Here we use 13 models of the ocean-carbon cycle to assess calcium carbonate saturation under the IS92a 'business-as-usual' scenario for future emissions of anthropogenic carbon dioxide. In our projections, Southern Ocean surface waters will begin to become undersaturated with respect to aragonite, a metastable form of calcium carbonate, by the year 2050. By 2100, this undersaturation could extend throughout the entire Southern Ocean and into the subarctic Pacific Ocean. When live pteropods were exposed to our predicted level of undersaturation during a two-day shipboard experiment, their aragonite shells showed notable dissolution. Our findings indicate that conditions detrimental to high-latitude ecosystems could develop within decades, not centuries as suggested previously.

Original languageEnglish
Pages (from-to)681-686
Number of pages6
JournalNature
Volume437
Issue number7059
DOIs
StatePublished - Sep 29 2005
Externally publishedYes

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