Regional Climate Change Recorded in Moss Oxygen and Carbon Isotopes from a Late Holocene Peat Archive in the Western Antarctic Peninsula
The Antarctic Peninsula (AP) climate is characterized by a high degree of variability, which poses a problem when attempting to put modern change in the context of natural variation. Therefore, novel methods are required to disentangle sometimes conflicting climate records from the region. In recent...
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doaj-20d10fd168b04b72a7fa1fd26ff86ad22020-11-25T01:07:47ZengMDPI AGGeosciences2076-32632019-06-019728210.3390/geosciences9070282geosciences9070282Regional Climate Change Recorded in Moss Oxygen and Carbon Isotopes from a Late Holocene Peat Archive in the Western Antarctic PeninsulaJonathan M. Stelling0Zicheng Yu1Lehigh University, Department of Earth and Environmental Sciences, Bethlehem, PA 18015, USALehigh University, Department of Earth and Environmental Sciences, Bethlehem, PA 18015, USAThe Antarctic Peninsula (AP) climate is characterized by a high degree of variability, which poses a problem when attempting to put modern change in the context of natural variation. Therefore, novel methods are required to disentangle sometimes conflicting climate records from the region. In recent years, the development of Antarctic moss-cellulose isotopes as a proxy for summer terrestrial growing conditions has become more widespread, with the isotopes Δ<sup>13</sup>C and δ<sup>18</sup>O reflecting moss productivity and peatbank moisture conditions, respectively. Here, we used a combined Δ<sup>13</sup>C and δ<sup>18</sup>O isotope analysis of moss <i>Chorisodontium aciphyllum</i> cellulose from a peatbank located on Litchfield Island in the western AP to document changes in climate over the last 1700 years. High Δ<sup>13</sup>C values (>15‰) indicate warm and productive conditions on Litchfield Island from 1600 to 1350 cal yr BP (350 to 600 AD) and over the last 100 years. The δ<sup>18</sup>O record shows two distinct intervals of dry conditions at 1350−1000 cal yr BP (600−950 AD) and at 500−0 cal yr BP (1450−1950 AD). Our record indicates that terrestrial ecosystems in the AP have responded to regional climate driven by atmospheric circulation, such as the southern annular mode (SAM) and, to a lesser extent, changes in ocean circulation.https://www.mdpi.com/2076-3263/9/7/282stable isotopespaleoclimateAntarctic Peninsulahydroclimatetemperature<i>Chorisodontium aciphyllum</i> |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Jonathan M. Stelling Zicheng Yu |
spellingShingle |
Jonathan M. Stelling Zicheng Yu Regional Climate Change Recorded in Moss Oxygen and Carbon Isotopes from a Late Holocene Peat Archive in the Western Antarctic Peninsula Geosciences stable isotopes paleoclimate Antarctic Peninsula hydroclimate temperature <i>Chorisodontium aciphyllum</i> |
author_facet |
Jonathan M. Stelling Zicheng Yu |
author_sort |
Jonathan M. Stelling |
title |
Regional Climate Change Recorded in Moss Oxygen and Carbon Isotopes from a Late Holocene Peat Archive in the Western Antarctic Peninsula |
title_short |
Regional Climate Change Recorded in Moss Oxygen and Carbon Isotopes from a Late Holocene Peat Archive in the Western Antarctic Peninsula |
title_full |
Regional Climate Change Recorded in Moss Oxygen and Carbon Isotopes from a Late Holocene Peat Archive in the Western Antarctic Peninsula |
title_fullStr |
Regional Climate Change Recorded in Moss Oxygen and Carbon Isotopes from a Late Holocene Peat Archive in the Western Antarctic Peninsula |
title_full_unstemmed |
Regional Climate Change Recorded in Moss Oxygen and Carbon Isotopes from a Late Holocene Peat Archive in the Western Antarctic Peninsula |
title_sort |
regional climate change recorded in moss oxygen and carbon isotopes from a late holocene peat archive in the western antarctic peninsula |
publisher |
MDPI AG |
series |
Geosciences |
issn |
2076-3263 |
publishDate |
2019-06-01 |
description |
The Antarctic Peninsula (AP) climate is characterized by a high degree of variability, which poses a problem when attempting to put modern change in the context of natural variation. Therefore, novel methods are required to disentangle sometimes conflicting climate records from the region. In recent years, the development of Antarctic moss-cellulose isotopes as a proxy for summer terrestrial growing conditions has become more widespread, with the isotopes Δ<sup>13</sup>C and δ<sup>18</sup>O reflecting moss productivity and peatbank moisture conditions, respectively. Here, we used a combined Δ<sup>13</sup>C and δ<sup>18</sup>O isotope analysis of moss <i>Chorisodontium aciphyllum</i> cellulose from a peatbank located on Litchfield Island in the western AP to document changes in climate over the last 1700 years. High Δ<sup>13</sup>C values (>15‰) indicate warm and productive conditions on Litchfield Island from 1600 to 1350 cal yr BP (350 to 600 AD) and over the last 100 years. The δ<sup>18</sup>O record shows two distinct intervals of dry conditions at 1350−1000 cal yr BP (600−950 AD) and at 500−0 cal yr BP (1450−1950 AD). Our record indicates that terrestrial ecosystems in the AP have responded to regional climate driven by atmospheric circulation, such as the southern annular mode (SAM) and, to a lesser extent, changes in ocean circulation. |
topic |
stable isotopes paleoclimate Antarctic Peninsula hydroclimate temperature <i>Chorisodontium aciphyllum</i> |
url |
https://www.mdpi.com/2076-3263/9/7/282 |
work_keys_str_mv |
AT jonathanmstelling regionalclimatechangerecordedinmossoxygenandcarbonisotopesfromalateholocenepeatarchiveinthewesternantarcticpeninsula AT zichengyu regionalclimatechangerecordedinmossoxygenandcarbonisotopesfromalateholocenepeatarchiveinthewesternantarcticpeninsula |
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