Abstract
The dominant external forces influencing the rate of change of the Earth System have been astronomical and geophysical during the planet’s 4.5-billion-year existence. In the last six decades, anthropogenic forcings have driven exceptionally rapid rates of change in the Earth System. This new regime can be represented by an ‘Anthropocene equation’, where other forcings tend to zero, and the rate of change under human influence can be estimated. Reducing the risk of leaving the glacial–interglacial limit cycle of the late Quaternary for an uncertain future will require, in the first instance, the rate of change of the Earth System to become approximately zero.
References
|
Barnosky, AD, Hadly, EA, Bascompte, J. (2012) Approaching a state shift in Earth’s biosphere. Nature 486 52–58. Google Scholar | Crossref | Medline | ISI | |
|
Bell, E, Boehnkea, P, Harrison, TM. (2015) Potentially biogenic carbon preserved in a 4.1 billion-year-old zircon. PNAS 112(47): 14,518–14,521. Google Scholar | Crossref | ISI | |
|
Berger, A, Crucifix, M, Hodell, DA. (Past Interglacials Working Group of PAGES ) (2016) Interglacials of the last 800,000 years. Reviews of Geophysics 54(1): 11–14. Google Scholar | ISI | |
|
Canfield, DE, Glazer, AN, Falkowski, PG (2010) The evolution and future of Earth’s nitrogen cycle. Science 330: 192–196. Google Scholar | Crossref | Medline | ISI | |
|
Carpenter, SR, Bennett, EM (2011) Reconsideration of the planetary boundary for phosphorus. Environment Research Letters 6: Available at: http://iopscience.iop.org/issue/1748-9326/6/1 Google Scholar | |
|
Ceballos, G, Ehrlich, PR, Barnosky, AD. (2015) Accelerated modern human-induced species losses: entering the sixth mass extinction. Science Advances 1(5): e1400253. Google Scholar | Crossref | Medline | ISI | |
|
Church, JA, Clark, PU, Cazenave, A. (2013) Sea level change. In: Stocker, TF, Qin, D, Plattner, GK. (eds) Climate Change 2013: The Physical Science Basis. Contribution of Working Group I to the Fifth Assessment Report of the Intergovernmental Panel on Climate Change. Cambridge; New York: Cambridge University Press, pp. 1137–1216. Google Scholar | |
|
Ciais, P, Sabine, C, Bala, G. (2013) Carbon and other biogeochemical cycles. In: Stocker, TF, Qin, D, Plattner, GK. (eds) Climate Change 2013: The Physical Science Basis. Contribution of Working Group I to the Fifth Assessment Report of the Intergovernmental Panel on Climate Change. Cambridge; New York: Cambridge University Press, pp. 465–570. Google Scholar | |
|
Clark, PU, Shakun, JD, Marcott, SA. (2016) Consequences of twenty-first-century policy for multi-millennial climate and sea-level change. Nature Climate Change 6: 360–369. doi: 10.1038/nclimate2923. Google Scholar | Crossref | ISI | |
|
Crutzen, PJ (2002) Geology of mankind – The Anthropocene. Nature 415: 23. Google Scholar | Crossref | Medline | ISI | |
|
Crutzen, PJ, Stoermer, EF (2000) The Anthropocene. Global Change Newsletter 41: 17–18. Google Scholar | |
|
Cui, Y, Kump, LR, Ridgwell, AJ. (2011) Slow release of fossil carbon during the Palaeocene-Eocene thermal maximum. Nature Geoscience 4(7): 481–485. Google Scholar | Crossref | ISI | |
|
Dalrymple, GB (2001) The age of the Earth in the twentieth century: a problem (mostly) solved. Journal of the Geological Society of London 190: 205–221. Google Scholar | Crossref | |
|
De Vos, JM, Joppa, LN, Gittleman, JL. (2015) Estimating the normal background rate of species extinction. Conservation Biology 29(2): 452–462. Google Scholar | Crossref | Medline | ISI | |
|
Diffenbaugh, NS, Field, CB (2013) Changes in ecologically critical terrestrial climate conditions. Science 341: 486–492. Google Scholar | Crossref | Medline | ISI | |
|
Dlugokencky, E (2016) NOAA/ESRL. Available at: www.esrl.noaa.gov/gmd/ccgg/trends_ch4/ (accessed 27 July 2016). Google Scholar | |
|
Douglas, I, Lawson, N (2000) The human dimensions of geomorphological work in Britain. Journal of Industrial Ecology 4: 9–33. Google Scholar | Crossref | |
|
Ellis, EC, Goldewijk, KK, Siebert, S. (2010) Anthropogenic transformation of the biomes, 1700 to 2000. Global Ecology and Biogeography 19: 589–606. Available at: http://dx.doi.org/10.1111/j.1466-8238.2010.00540.x Google Scholar | |
|
Elsig, J, Schmitt, J, Leuenberger, D. (2009) Stable isotope constraints on Holocene carbon cycle changes from an Antarctic ice core. Nature 461: 507–510. doi:10.1038/nature08393. Available at: http://www.nature.com/nature/journal/v461/n7263/full/nature08393.html Google Scholar | |
|
Fowler, D, Coyle, M, Skiba, U. (2013) The global nitrogen cycle in the 21st century. Philosophical Transactions of the Royal Society B 368(1621): 1–13. Google Scholar | ISI | |
|
Ganopolski, A, Winkelmann, R, Schellnhuber, HJ (2016) Critical insolation–CO2 relation for diagnosing past and future glacial inception. Nature 529: 200–203. doi:10.1038/nature16494. Google Scholar | Crossref | Medline | ISI | |
|
Haff, PK (2014) Humans and technology in the Anthropocene. Six rules. The Anthropocene Review 1: 126–130. Google Scholar | SAGE Journals | |
|
Hamilton, C, Grinevald, J (2015) Was the Anthropocene anticipated? The Anthropocene Review 2: 59–72. Google Scholar | SAGE Journals | |
|
Hibbard, KA, Crutzen, PJ, Lambin, EF. (2006) Decadal interactions of humans and the environment. In: Costanza, R, Graumlich, L, Steffen, W (eds) Integrated History and Future of People on Earth Dahlem Workshop Report 96: 341–375. Google Scholar | |
|
Holdren, JP, Ehrlich, PR (1974) Human population and the global environment. American Scientist 62: 282–292. Google Scholar | Medline | ISI | |
|
Hönisch, B. (2012) The geological record of ocean acidification. Science 335: 1058–1062. Google Scholar | Crossref | Medline | ISI | |
|
Intergovernmental Panel on Climate Change (IPCC) (2013) Climate Change 2013: The Physical Science Basis. Contribution of Working Group 1 to the Fifth Assessment Report of the Intergovernmental Panel on Climate Change (Stocker, TF, Qin, D, Lattner, GK., eds). Cambridge; New York: Cambridge University Press. Available at: http://www.ipcc.ch/report/ar5/wg1/citation/WGIAR5_Citations_FinalRev1.pdf Google Scholar | |
|
Konhauser, KO, Pecoits, E, Lalonde, SV. (2009) Oceanic nickel depletion and a methanogen famine before the great oxidation event. Nature 458(7239): 750–753. Available at: http://dx.doi.org/10.1038/nature07858 Google Scholar | |
|
Lenton, T (2016) Earth System Science: A Very Short Introduction. Oxford: Oxford University Press, 153 pp. Google Scholar | Crossref | |
|
Lenton, TM, Williams, HTP (2013) On the origin of planetary-scale tipping points. Trends in Ecology & Evolution 28: 380–382. Google Scholar | Crossref | Medline | ISI | |
|
Lewis, SL, Maslin, MA (2015) Defining the Anthropocene. Nature 519: 171–180. Google Scholar | Crossref | Medline | ISI | |
|
Loulergue, LA, Schilt, R, Spahni, V. (2008) Orbital and millennial-scale features of atmospheric CH4 over the past 800,000 years. Nature 453: 383–386. doi:10.1038/nature06950. Google Scholar | Crossref | Medline | ISI | |
|
McGregor, HV, Evans, MN, Goosse, H. (2015) Robust global ocean cooling trend for the pre-industrial common era. Nature Geoscience 8(9): 671–677. Available at: http://dx.doi.org/10.1038/ngeo2510 Google Scholar | |
|
McNeill, JR, Engelke, P (2016) The Great Acceleration: An Environmental History of the Anthropocene Since 1945. Cambridge, Massachusetts: Harvard University Press, 288 pp. Google Scholar | Crossref | |
|
Malm, A, Hornborg, A (2015) The geology of mankind? A critique of the Anthropocene narrative. The Anthropocene Review 1: 62–69. Google Scholar | SAGE Journals | |
|
Marcott, SA, Shakun, JD, Clark, PU. (2013) A reconstruction of regional and global temperature for the past 11300 years. Science 339(6124): 1198–1201. Available at: http://dx.doi.org/10.1126/science.1228026 Google Scholar | |
|
Milanković, MM (1941) Canon of Insolation and the Ice-Age Problem. Belgrade: Koniglich Serbische Academie. Google Scholar | |
|
National Oceanic and Atmospheric Administration (2016) State of the Climate: Global Analysis for Annual 2015. National Centers for Environmental Information. Available at: http://www.ncdc.noaa.gov/sotc/global/201513 Google Scholar | |
|
Nutman, AP, Bennett, VC, Friend, CRL. (2016) Rapid emergence of life shown by discovery of 3,700-million-year-old microbial structures. Nature 537: 535–538. doi: 10.1038/nature19355. Google Scholar | Crossref | Medline | ISI | |
|
Petit, JR, Jouzel, J, Raynaud, D. (1999) Climate and atmospheric history of the past 420,000 years from the Vostok ice core, Antarctica. Nature 399: 429–436. Google Scholar | Crossref | ISI | |
|
Rhein, M, Rintoul, SR, Aoki, S. (2013) Observations: Ocean. In: Stocker, TF, Qin, D, Plattner, GK (eds) Climate Change 2013: The Physical Science Basis. Contribution of Working Group I to the Fifth Assessment Report of the Intergovernmental Panel on Climate Change. Cambridge; New York: Cambridge University Press, pp. 293–294. Google Scholar | |
|
Ruddiman, WF (2013). The Anthropocene. Annual Review of Earth and Planetary Science 41: 45–68. Google Scholar | Crossref | ISI | |
|
Saunois, M, Bousquet, P, Poulter, B. (2016) The global methane budget 2000-2012. Earth System Science Data 8: 697–751. doi:10.5194/essd-8-697-2016. Google Scholar | Crossref | ISI | |
|
Schellnhuber, HJ (1998) Earth system analysis – the scope of the challenge. In: Schellnuber, HJ, Wenzel, V (eds) Earth System Analysis: Integrating Science for Sustainability. Berlin; Heidelberg: Springer-Verlag, pp. 5–195. Google Scholar | Crossref | |
|
Schellnhuber, HJ (1999) ‘Earth system’ analysis and the second Copernican revolution. Nature 402: 19–23. Google Scholar | Crossref | ISI | |
|
Schellnhuber, HJ (2001) Earth System analysis and management. In: Eckart, E, Thomas, K (eds) Understanding the Earth System: Compartments, Processes and Interactions. Berlin; Heidelberg: Springer-Verlag, pp. 17–55. Google Scholar | Crossref | |
|
Singarayer, JS, Valdes, PJ, Friedlingstein, P. (2011) Late Holocene methane rise caused by orbitally controlled increase in tropical sources. Nature 470: 82–85. Google Scholar | Crossref | Medline | ISI | |
|
Steffen, W, Broadgate, W, Deutsch, L. (2015b) The trajectory of the Anthropocene: The Great Acceleration. The Anthropocene Review 2: 81–98. Google Scholar | SAGE Journals | ISI | |
|
Steffen, W, Crutzen, P, McNeill, JR (2007) The Anthropocene: are humans now overwhelming the great forces of nature? Ambio 36: 614–621. doi: 10.1579/0044-7447(2007)36[614:TAAHNO]2.0.CO;2; pmid: 18240674. Google Scholar | Crossref | Medline | ISI | |
|
Steffen, W, Persson, Å, Deutsch, L. (2011) The Anthropocene: from global change to planetary stewardship. Ambio 40: 739–761. Google Scholar | Crossref | Medline | ISI | |
|
Steffen, W, Sanderson, A, Tyson, PD. (2004) Global Change and the Earth System: A Planet Under Pressure. The IGBP Book Series., Berlin; Heidelberg; New York: Springer-Verlag, 336 pp. Google Scholar | |
|
Steffen, W, Leinfelder, R, Zalasiewicz, J.. (2016) Stratigraphic and Earth System approaches to defining the Anthropocene. Earth’s Future 4: doi:eft2/2016EF000379 Google Scholar | Crossref | Medline | ISI | |
|
Steffen, W, Richardson, K, Rockström, J. (2015a) Planetary boundaries: guiding human development on a changing planet. Science 347: 1259855. Google Scholar | Crossref | Medline | ISI | |
|
Syvitski, J, Kettner, A, Overeem, I. (2009) Sinking deltas due to human activities. Nature Geoscience 2: 681–686. doi: 10.1038/ngeo629. Google Scholar | Crossref | ISI | |
|
Waters, CN, Zalasiewicz, J, Summerhayes, C. (2016) The Anthropocene is functionally and stratigraphically distinct from the Holocene. Science 351(6269): 137. Google Scholar | Crossref | ISI | |
|
Williams, M, Zalasiewicz, J, Haff, PK. (2015) The Anthropocene biosphere. The Anthropocene Review 2(3) 196–219. Google Scholar | SAGE Journals | ISI | |
|
Wolff, EW (2011) Greenhouse gases in the Earth system: a palaeoclimate perspective. Philosophical Transactions of the Royal Society London Series A 369: 2133–2147. Google Scholar | Crossref | Medline | ISI | |
|
Zalasiewicz, J, Williams, M, Waters, CN. (2014a) The technofossil record of humans. The Anthropocene Review 1: 34–43. Google Scholar | SAGE Journals | ISI | |
|
Zalasiewicz, J, Williams, M, Waters, CN (2014b) Can an Anthropocene series be defined and recognized? In: Waters, CN, Zalasiewicz, JA, Williams, M. (eds) A Stratigraphical Basis for the Anthropocene. London: Geological Society, pp. 39–53. Google Scholar | Crossref | |
|
Zeebe, R (2012) History of seawater carbonate chemistry, atmospheric CO2, and ocean acidification. Annual Review Earth and Planetary Science 40: 141–65. doi 10.1146/annurev-earth-042711-105521. Google Scholar | |
|
Zeebe, RE, Ridgwell, A, Zachos, JC (2016) Anthropogenic carbon release rate unprecedented during the past 66 million years. Nature Geoscience 9: 325–329. doi:10.1038/ngeo2681. Google Scholar | Crossref | ISI |
