Untangling the influence of in-lake productivity and terrestrial organic matter flux on 4,250 years of mercury accumulation in Lake Hambre, Southern Chile

被引:0
作者
Yvonne-Marie Hermanns
Antonio Martinez Cortizas
Helge Arz
Rüdiger Stein
Harald Biester
机构
[1] Technische Universität Braunschweig,Institut für Geoökologie
[2] University of Santiago de Compostela,Department of Pedology and Agricultural Chemistry, Faculty of Biology
[3] Leibniz Institute for Baltic Sea Research Warnemünde,undefined
[4] Alfred Wegener Institute for Polar and Marine Research,undefined
来源
Journal of Paleolimnology | 2013年 / 49卷
关键词
Mercury; Lake sediments; Patagonia; Algal scavenging; Terrestrial organic matter;
D O I
暂无
中图分类号
学科分类号
摘要
There is ongoing debate about the relative influence of aquatic production, flux, and sedimentation of aquatic and terrestrial organic matter on mercury accumulation in lake sediments. In this study, lake sediments spanning the past 4,250 years, were collected from remote, organic-rich Lake Hambre, Patagonia (53° S) and investigated for changes in the accumulation of pre-anthropogenic mercury and organic matter of aquatic and terrestrial origin. Natural mercury accumulation varied by up to a factor of four, comparable to the recent anthropogenic forcing of the mercury cycle (factor 3–5). Hydrogen and Oxygen indices (HI and OI, Rock–Eval©) and nitrogen/carbon ratios of the organic matter, combined with multi-element sediment data, reveal intense changes in aquatic productivity as well as influx of terrestrial organic matter into the lake. Evaluation of the multi-element dataset using Principal Component Analysis shows clear covariation of mercury with other soil-derived elements such as copper and yttrium. This covariance reflects a common transport mechanism, i.e. leaching of trace-element-bearing organic matter complexes from catchment soils. Correlation between changes in aquatic productivity and mercury concentrations occurs in some sections of the record, but we do not suggest they are linked by a direct causal relationship. Mass balance approaches suggest that mercury scavenging and accumulation in this organic-rich lake is controlled by the supply of mercury from catchment soils rather than the amount of organic material produced within the water column. A common controlling mechanism, i.e. changing climate, however, is thought to independently drive variations in both the flux of terrestrial organic matter mercury complexes and aquatic productivity.
引用
收藏
页码:563 / 573
页数:10
相关论文
共 153 条
[1]  
Bergkvist B(1998)Fluxes of Cu, Zn, Pb, Cd, Cr and Ni in temperate forest ecosystems Water Air Soil Pollut 47 217-286
[2]  
Folkeson L(2003)Effect of peat decomposition and mass loss on historic mercury records in peat bogs from Patagonia Environ Sci Technol 37 32-39
[3]  
Berggren D(2003)Effects of Holocene climate change on mercury deposition in Elk Lake, Minnesota: the importance of eolian transport in the mercury cycle Geology 31 187-190
[4]  
Biester H(1996)Dynamics of extractable organic carbon in spodsol forest floors Soil Biol Biochem 28 1171-1179
[5]  
Martinez-Cortizas A(1995)The role of dissolved organic carbon in the chemistry and bioavailability of mercury in remote Adirondack lakes Water Air Soil Pollut 80 499-508
[6]  
Birkenstock S(2005)Modern and historic atmospheric mercury fluxes in Northern Alaska: global sources and Arctic depletion Environ Sci Technol 39 557-568
[7]  
Kilian R(2001)An enzymatic ‘latch’ on a global carbon store—a shortage of oxygen locks up carbon in peatlands by restraining a single enzyme Nature 409 149-1082
[8]  
Cannon WF(2008)Carbon and nitrogen loss rates during aging of lake sediment: changes over 27 years studied in varved lake sediment Limnol Oceanogr 53 1076-3570
[9]  
Dean WE(2002)Binding of mercury(II) to dissolved organic matter: the role of the mercury to DOM concentration ratio Environ Sci Technol 36 3564-778
[10]  
Bullock JH(1998)Speciation of Yttrium and lanthanides in natural water by inductively coupled plasma mass spectrometry after preconcentration by ultrafiltration and with a chelating resin Analyst 123 773-24