Beaufort Sea: further evidence for the use of the IP 25 biomarker as a proxy for spring Arctic
Sea ice. Polar Biol 34:1857–1868
Brown TA, Belt ST, Tatarek A, Mundy CJ (2014) Source identification of the Arctic Sea ice proxy
IP 25 . Nature Commun 5:4197
Cabedo-Sanz P, Belt ST, Knies, Husum K (2013) Identification of contrasting seasonal sea ice
conditions during the Younger Dryas. Quat Sci Rev 79:74–86. doi:10.1016/j.quascirev.2012.
10.028
Chave KE (1954) Aspects of the biogeochemistry of 1. Calcareous marine organisms. J Geol
62:266–283
Chen JL, Wilson CR, Tapley BD (2006) Satellite gravity measurements confirm accelerated
melting of Greenland ice sheet. Science 313:1958–1960
Comiso JC, Parkinson CL, Gersten R, Stock L (2008) Accelerated decline in the Arctic Sea ice
cover. Geophys Res Lett 35:L01703
Conan SMH, Ivanova EM, Brummer GJ (2002) Quantifying carbonate dissolution and calibration
of foraminiferal dissolution indices in the Somali Basin. Mar Geol 182(3–4):325–349
Coolen MJL, Boere A, Abbas B, Baas M, Wakeham SG, Sinninghe Damste JS (2006) Ancient
DNA derived from alkenone-biosynthesizing haptophytes and other algae in Holocene
sediments from the Black Sea. Paleoceanography 21:1–17
Coolen MJL, Volkman JK, Abbas B, Muyzer G, Schouten S, Sinninghe Damste JS (2007)
Identification of organic matter sources in sulfidic late Holocene Antarctic fjord sediments from
fossil rDNA sequence analysis. Paleoceanography 22(2):PA2211. doi:10.1029/2006PA001309
Coolen MJL, Orsi WD, Balkema C, Quince C, Harris K, Sylva SP, Filipova-Marinovad M, Giosan
L (2013) Evolution in the plankton paleome in the Black Sea from the Deglacial to
Anthropocene. PNAS 110(21):8609–8614
Croudace IW, Rindby A, Rothwell RG (2006) ITRAX: description and evaluation of a new multifunction X-ray core scanner. In: Rothwell RG (ed) New techniques in sediment core analysis.
Geological Society of London, London, pp 51–63
de la Torre JR, Walker JC, Ingalls A, Könneke M, Stahl D (2008) Cultivation of a thermophilic
ammonia oxidizing archaeon synthesizing crenarchaeol. Environ Microbiol 10:810–818
De Rosa M, Esposito E, Gambacorta A, Nicolaus B, Bu’Lock J (1980) Effects of temperature on
ether lipid composition of Caldariella acidophila. Phytochemistry 19:827–831
Dzvonik JP (1996) Alkenones as records of oceanic paleotemperatures: studies of Eocene and
Oligocene sediments from the north, south and Equatorial Atlantic, M.S. dissertation, Indiana
University, Bloomington
Edmond JM, Gieskes JMTM (1970) On the calculation of the degree of saturation of seawater with
respect to calcium carbonate under in-situ conditions. Geochim Cosmochim Acta 34:1261–
1291
Erbs-Hansen DR, Knudsen KL, Olsen J, Underbjerg JA, Sha L (2013) Paleoceanographical
development off Sisimiut, west Greenland, during the mid- and late Holocene: a multiproxy
study. Mar Micropaleontol 102:79–97
Fahl K, Stein R (2012) Modern seasonal variability and deglacial/Holocene change of central
Arctic Ocean sea-ice cover: new insights from biomarker proxy records. Earth Planet Sci Lett
351–352:123–133
Farmer JR, Cronin TM, Dwyer GS (2012) Ostracode Mg/Ca paleothermometry in the north
Atlantic and Arctic Oceans: evaluation of a carbonate ion effect. Paleoceanography 27(2):2212.
doi:10.1029/2012PA002305
Farrimond P, Eglinton G, Brassell SC (1987) Alkenones in Cretaceous black shales, BlakeBahama Basin, western north Atlantic. Org Geochem 10:897–903
Funk J, von Dobeneck T, Reitz A (2004) Integrated rock magnetic and geochemical quantification
of redoxomorphic iron mineral diagenesis in Late Quaternary sediments from the Equatorial
Atlantic. In: Wefer G, Mulitza S, Ratmeyer V (eds) The south Atlantic in the Late Quaternary:
reconstruction of material budgets and current systems. Springer, Berlin, pp 239–262
Francis JA, Vavrus SJ (2012) Evidence linking Arctic amplification to extreme weather in midlatitudes. Geophys Res Lett 39:L06801. doi:10.1029/2012GL051000
New Methods in the Reconstruction of Arctic Marine …
141
Sea ice. Polar Biol 34:1857–1868
Brown TA, Belt ST, Tatarek A, Mundy CJ (2014) Source identification of the Arctic Sea ice proxy
IP 25 . Nature Commun 5:4197
Cabedo-Sanz P, Belt ST, Knies, Husum K (2013) Identification of contrasting seasonal sea ice
conditions during the Younger Dryas. Quat Sci Rev 79:74–86. doi:10.1016/j.quascirev.2012.
10.028
Chave KE (1954) Aspects of the biogeochemistry of 1. Calcareous marine organisms. J Geol
62:266–283
Chen JL, Wilson CR, Tapley BD (2006) Satellite gravity measurements confirm accelerated
melting of Greenland ice sheet. Science 313:1958–1960
Comiso JC, Parkinson CL, Gersten R, Stock L (2008) Accelerated decline in the Arctic Sea ice
cover. Geophys Res Lett 35:L01703
Conan SMH, Ivanova EM, Brummer GJ (2002) Quantifying carbonate dissolution and calibration
of foraminiferal dissolution indices in the Somali Basin. Mar Geol 182(3–4):325–349
Coolen MJL, Boere A, Abbas B, Baas M, Wakeham SG, Sinninghe Damste JS (2006) Ancient
DNA derived from alkenone-biosynthesizing haptophytes and other algae in Holocene
sediments from the Black Sea. Paleoceanography 21:1–17
Coolen MJL, Volkman JK, Abbas B, Muyzer G, Schouten S, Sinninghe Damste JS (2007)
Identification of organic matter sources in sulfidic late Holocene Antarctic fjord sediments from
fossil rDNA sequence analysis. Paleoceanography 22(2):PA2211. doi:10.1029/2006PA001309
Coolen MJL, Orsi WD, Balkema C, Quince C, Harris K, Sylva SP, Filipova-Marinovad M, Giosan
L (2013) Evolution in the plankton paleome in the Black Sea from the Deglacial to
Anthropocene. PNAS 110(21):8609–8614
Croudace IW, Rindby A, Rothwell RG (2006) ITRAX: description and evaluation of a new multifunction X-ray core scanner. In: Rothwell RG (ed) New techniques in sediment core analysis.
Geological Society of London, London, pp 51–63
de la Torre JR, Walker JC, Ingalls A, Könneke M, Stahl D (2008) Cultivation of a thermophilic
ammonia oxidizing archaeon synthesizing crenarchaeol. Environ Microbiol 10:810–818
De Rosa M, Esposito E, Gambacorta A, Nicolaus B, Bu’Lock J (1980) Effects of temperature on
ether lipid composition of Caldariella acidophila. Phytochemistry 19:827–831
Dzvonik JP (1996) Alkenones as records of oceanic paleotemperatures: studies of Eocene and
Oligocene sediments from the north, south and Equatorial Atlantic, M.S. dissertation, Indiana
University, Bloomington
Edmond JM, Gieskes JMTM (1970) On the calculation of the degree of saturation of seawater with
respect to calcium carbonate under in-situ conditions. Geochim Cosmochim Acta 34:1261–
1291
Erbs-Hansen DR, Knudsen KL, Olsen J, Underbjerg JA, Sha L (2013) Paleoceanographical
development off Sisimiut, west Greenland, during the mid- and late Holocene: a multiproxy
study. Mar Micropaleontol 102:79–97
Fahl K, Stein R (2012) Modern seasonal variability and deglacial/Holocene change of central
Arctic Ocean sea-ice cover: new insights from biomarker proxy records. Earth Planet Sci Lett
351–352:123–133
Farmer JR, Cronin TM, Dwyer GS (2012) Ostracode Mg/Ca paleothermometry in the north
Atlantic and Arctic Oceans: evaluation of a carbonate ion effect. Paleoceanography 27(2):2212.
doi:10.1029/2012PA002305
Farrimond P, Eglinton G, Brassell SC (1987) Alkenones in Cretaceous black shales, BlakeBahama Basin, western north Atlantic. Org Geochem 10:897–903
Funk J, von Dobeneck T, Reitz A (2004) Integrated rock magnetic and geochemical quantification
of redoxomorphic iron mineral diagenesis in Late Quaternary sediments from the Equatorial
Atlantic. In: Wefer G, Mulitza S, Ratmeyer V (eds) The south Atlantic in the Late Quaternary:
reconstruction of material budgets and current systems. Springer, Berlin, pp 239–262
Francis JA, Vavrus SJ (2012) Evidence linking Arctic amplification to extreme weather in midlatitudes. Geophys Res Lett 39:L06801. doi:10.1029/2012GL051000
New Methods in the Reconstruction of Arctic Marine …
141
