Cryosphere as a temporal sink and source of microplastics in the Arctic region
Geoscience Frontiers2023
49 citations
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Deonie Allen,
Deonie Allen,
Deonie Allen,
Steve Allen
Zhaoqing Wang,
Zhaoqing Wang,
Zhaoqing Wang,
Ling Yang,
Ling Yang,
Ling Yang,
Ling Yang,
Ling Yang,
Ling Yang,
Ling Yang,
Jinlei Chen,
Jinlei Chen,
Jinlei Chen,
Xi Luo,
Xi Luo,
Xi Luo,
Shichang Kang,
Steve Allen
Yulan Zhang,
Yulan Zhang,
Steve Allen
Yulan Zhang,
Yulan Zhang,
Yulan Zhang,
Yulan Zhang,
Yulan Zhang,
Steve Allen
Steve Allen
Yulan Zhang,
Yulan Zhang,
Yulan Zhang,
Steve Allen
Steve Allen
Shichang Kang,
Deonie Allen,
Deonie Allen,
Shichang Kang,
Yulan Zhang,
Shichang Kang,
Yulan Zhang,
Yulan Zhang,
Yulan Zhang,
Yulan Zhang,
Yulan Zhang,
Shichang Kang,
Steve Allen
Yulan Zhang,
Yulan Zhang,
Steve Allen
Yulan Zhang,
Yulan Zhang,
Yulan Zhang,
Steve Allen
Yulan Zhang,
Yulan Zhang,
Steve Allen
Shichang Kang,
Shichang Kang,
Shichang Kang,
Shichang Kang,
Shichang Kang,
Shichang Kang,
Shichang Kang,
Shichang Kang,
Tanguang Gao,
Tanguang Gao,
Tanguang Gao,
Tanguang Gao,
Tanguang Gao,
Tanguang Gao,
Zhaoqing Wang,
Deonie Allen,
Deonie Allen,
Deonie Allen,
Deonie Allen,
Deonie Allen,
Deonie Allen,
Deonie Allen,
Deonie Allen,
Deonie Allen,
Shichang Kang,
Shichang Kang,
Shichang Kang,
Shichang Kang,
Shichang Kang,
Shichang Kang,
Shichang Kang,
Shichang Kang,
Ling Yang,
Shichang Kang,
Shichang Kang,
Shichang Kang,
Xi Luo,
Shichang Kang,
Zhaoqing Wang,
Deonie Allen,
Tanguang Gao,
Shichang Kang,
Shichang Kang,
Yulan Zhang,
Yulan Zhang,
Shichang Kang,
Xi Luo,
Shichang Kang,
Shichang Kang,
Yulan Zhang,
Pengfei Chen,
Shichang Kang,
Shichang Kang,
Shichang Kang,
Steve Allen
Shichang Kang,
Tanguang Gao,
Shichang Kang,
Shichang Kang,
Shichang Kang,
Steve Allen
Shichang Kang,
Shichang Kang,
Xi Luo,
Shichang Kang,
Shichang Kang,
Yulan Zhang,
Shichang Kang,
Shichang Kang,
Deonie Allen,
Shichang Kang,
Yulan Zhang,
Steve Allen
Shichang Kang,
Shichang Kang,
Shichang Kang,
Shichang Kang,
Shichang Kang,
Deonie Allen,
Xi Luo,
Shichang Kang,
Tanguang Gao,
Tanguang Gao,
Tanguang Gao,
Ling Yang,
Yulan Zhang,
Steve Allen
Ling Yang,
Yulan Zhang,
Yulan Zhang,
Steve Allen
Ling Yang,
Zhaoqing Wang,
Zhaoqing Wang,
Zhaoqing Wang,
Zhaoqing Wang,
Zhaoqing Wang,
Deonie Allen,
Deonie Allen,
Deonie Allen,
Deonie Allen,
Deonie Allen,
Shichang Kang,
Xi Luo,
Shichang Kang,
Tanguang Gao,
Tanguang Gao,
Zhaoqing Wang,
Steve Allen
Steve Allen
Deonie Allen,
Yulan Zhang,
Tanguang Gao,
Xi Luo,
Xi Luo,
Shichang Kang,
Xi Luo,
Xi Luo,
Xi Luo,
Tanguang Gao,
Steve Allen
Steve Allen
Pengfei Chen,
Xi Luo,
Tanguang Gao,
Deonie Allen,
Xi Luo,
Pengfei Chen,
Pengfei Chen,
Deonie Allen,
Deonie Allen,
Deonie Allen,
Steve Allen
Steve Allen
Steve Allen
Tanguang Gao,
Xi Luo,
Tanguang Gao,
Pengfei Chen,
Xi Luo,
Ling Yang,
Zhaofu Hu,
Zhaofu Hu,
Jinlei Chen,
Zhaofu Hu,
Zhaofu Hu,
Zhaofu Hu,
Zhaofu Hu,
Zhaofu Hu,
Yulan Zhang,
Zhaofu Hu,
Tanguang Gao,
Deonie Allen,
Pengfei Chen,
Steve Allen
Tanguang Gao,
Wentao Du,
Tanguang Gao,
Tanguang Gao,
Steve Allen
Zhaofu Hu,
Zhaofu Hu,
Steve Allen
Deonie Allen,
Steve Allen
Summary
This review examined the Arctic cryosphere as both a sink and source of microplastics, showing that sea ice, snow, and permafrost store significant quantities of microplastics that are increasingly released into the environment as climate warming accelerates.
Study Type
Environmental
Microplastics (MPs) pollution has become a serious environmental issue of growing global concern due to the increasing plastic production and usage. Under climate warming, the cryosphere, defined as the part of Earth’s layer characterized by the low temperatures and the presence of frozen water, has been experiencing significant changes. The Arctic cryosphere (e.g., sea ice, snow cover, Greenland ice sheet, permafrost) can store and release pollutants into environments, making Arctic an important temporal sink and source of MPs. Here, we summarized the distributions of MPs in Arctic snow, sea ice, seawater, rivers, and sediments, to illustrate their potential sources, transport pathways, storage and release, and possible effects in this sentinel region. Items concentrations of MPs in snow and ice varied about 1- 6 orders of magnitude in different regions, which were mostly attributed to the different sampling and measurement methods, and potential sources of MPs. MPs concentrations from Arctic seawater, river/lake water, and sediments also fluctuated largely, ranging from several items of per unit to more than 40,000 items m-3, 100 items m-3, and 10,000 items kg-1 dw, respectively. Arctic land snow cover can be a temporal storage of MPs, with MPs deposition flux of about (4.9 - 14.26) × 108 items km-2 yr-1. MPs transported by rivers to Arctic ocean was estimated to be approximately 8 - 48 ton yr-1, with discharge flux of MPs at about (1.65 - 9.35) × 108 items/s. Average storage of MPs in sea ice was estimated to be about 6.1×1018 items, with annual release of about 5.1×1018 items. Atmospheric transport of MPs from long-distance terrestrial sources contributed significantly to MPs deposition in Arctic land snow cover, sea ice and oceanic surface waters. Arctic Great Rivers can flow MPs into the Arctic Ocean. Sea ice can temporally store, transport and then release MPs in the surrounded environment. Ocean currents from the Atlantic brought high concentrations of MPs into the Arctic. However, there existed large uncertainties of estimation on the storage and release of MPs in Arctic cryosphere owing to the hypothesis of average MPs concentrations. Meanwhile, representatives of MPs data across the large Arctic region should be mutually verified with in situ observations and modeling. Therefore, we suggested that systematic monitoring MPs in the Arctic cryosphere, potential threats on Arctic ecosystems, and the carbon cycle under increasing Arctic warming, are urgently needed to be studied in future.