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Bushfire impacts proposed Anthropocene markers in a Southern Hemisphere World Heritage peatland

Bibliographic Data

ID19487151
AuthorsR Carroll (0000-0001-5895-0031, Western Sydney University), G E Jacobsen, GE Jacobsen (Australian Nuclear Science and Technology Organisation), D P Child, DP Child (Australian Nuclear Science and Technology Organisation), A Zawadzki (Australian Nuclear Science and Technology Organisation), S Maizma (Australian Nuclear Science and Technology Organisation), MAC Hotchkis (Australian Nuclear Science and Technology Organisation), J K Reynolds, Jk Reynolds (Western Sydney University, corresponding author)
Year2026
Volume55
Pages100556
Publication date2026-09-01
Peer ReviewedYes
Open AccessYes
TypeARTICLE
VenueAnthropocene (JOURNAL)
Journal identifiersISSN: 2213-3054
PublisherElsevier BV (PUBLISHER)
DOI10.1016/j.ancene.2026.100556
OpenAlexW7164351312
LanguageEN
References cited122

Humankind has left an indelible mark on natural ecosystems. This has fuelled proposals that we have exited the Holocene and entered the Anthropocene. The Anthropocene is commonly proposed to have commenced in the mid-20 th century, marked by the presence of radionuclide fallout from above ground nuclear testing. Peatlands develop through progressive accumulation of partially decomposed plant material in saturated environments, and in Australia have a restricted distribution covering approximately 2.3 Mha. Detailed examination of a peat profile was conducted at Mount Banks, within the Greater Blue Mountains World Heritage Area, Australia. Soil chemistry, palynology, radiocarbon ( 14 C), lead ( 210 Pb), plutonium ( 239 Pu, 240 Pu, and 241 Pu), and uranium ( 236 U) isotopes were assessed to develop a record of environmental conditions into the proposed Anthropocene (mid-20 th century). This site formed from the Meghalayan stage (1,550 ± 30 years BP at 70 cm) and exhibited a relatively stable sedge and shrub vegetation community, interrupted with periods of fire through time which influences 210 Pb age-depth modelling. Peak radionuclide fallout (at 9.5 cm) occurred in the fibric zone and fallout levels of total plutonium and 236 U were below global mean values, aligning with previous research in the Southern Hemisphere. To the best of our knowledge, this is the first study to examine the vertical distribution of fallout plutonium and uranium isotopes in south-eastern Australian montane peatlands. Peatlands face an uncertain future under projected climatic changes. Enhancing understanding of risks is essential to navigate the transition into the proposed Anthropocene and maintain these unique environments for the future

Anthropocene · Climate change · Peat · Southern Hemisphere · Western hemisphere · World heritage · Ecology and biodiversity studies · Fire effects on ecosystems · Peatlands and Wetlands Ecology

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