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Dissolved organic matter in Arctic multi-year sea ice during winter: major components and relationship to ice characteristics

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Abstract

Ice cores were collected between 10.03.93 and 15.03.93 along a 200 m profile on a large ice floe in Fram Strait. The ice was typical of Arctic multi-year ice, having a mean thickness along the profile of 2.56 ±0.53 m. It consisted mostly of columnar ice (83%) grown through congelation of seawater at the ice bottom, and the salinity profiles were characterized by a linear increase from 0 psu at the top to values ranging between 3 and 5 psu at depth. Distributions of dissolved organic carbon (DOC) and nitrogen (DON) and major nutrients were compared with ice texture, salinity and chlorophyll a. DOC, DON, dissolved inorganic nitrogen (DIN), NH4 + and NO2 were present in concentrations in excess of that predicted by dilution curves derived from Arctic surface water values. Only NO3 was depleted, although not exhausted. High DOC and DON values in conjunction with high NH4 + levels indicated that a significant proportion of the dissolved organic matter (DOM) was a result of decomposition/grazing of ice algae and/or detritus. The combination of high NH4 + and NO2 points to regeneration of nitrogen compounds. There was no significant correlation between DOC and Chl a in contrast to DON, which had a positively significant correlation with both salinity and Chl a, and the distribution of DOM in the cores might best be described as a combination of both physical and biological processes. There was no correlation between DOC and DON suggesting an uncoupling of DOC and DON dynamics in multi year ice.

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References

  • Antia A, Kähler P (1994) DOC/DON. Ber Polarforsch 135:47–49

    Google Scholar 

  • Apollonio S (1980) Microflora of arctic sea ice. Natl Geogr Soc Res Rep 12:13–20

    Google Scholar 

  • Bunch JN, Harland RC (1990) Bacterial production in the bottom surface of sea ice in the Canadian subarctic. Can J Fish Aquat Sci 47 1986–1995

    Google Scholar 

  • Colony R, Thorndike AS (1985) Sea ice motion as a drunkard's walk. J Geophys Res 90:965–974

    Google Scholar 

  • Cota GF, Anning JL, Harris LR, Harrison WG, Smith REH (1990) Impact of ice algae on inorganic nutrients in seawater and sea ice in Barrow Strait, NWT, Canada, during spring. Can J Fish Aquat Sci 47:1402–1415

    Google Scholar 

  • Cota GF, Legendre L, Gosselin M, Ingram RG (1991) Ecology of bottom ice algae. I. Environmental controls and variability. J Mar Systems 2:257–277

    Google Scholar 

  • Dieckmann GS, Lange MA, Ackley SF, Jennings JC Jr (1991) The nutrient status in sea ice of the Weddell Sea during winter: effects of sea ice texture and algae. Polar Biol 12:449–456

    Google Scholar 

  • Eicken H, Meincke J (1994) The expedition ARKTIS-IX/1 of RV Polarstern in 1993. Ber Polarforsch 134:1–111

    Google Scholar 

  • Eicken H, Lange MA, Dieckmann GS (1991) Spatial variability of sea-ice properties in the northwestern Weddell Sea. J Geophys Res 96:10603–10615

    Google Scholar 

  • Eicken H, Gerland S, Haas C, Hannke S, Valero Delgado F (1994) Structure and physical properties of sea ice and application of geophysical methods for ice thickness measurements. Ber Polarforsch 134:93–99

    Google Scholar 

  • Evans CA, O'Reilly JE, Thomas JP (1987) A handbook for the measurement of chlorophyll a and primary production. Biological investigations of marine Antarctic systems and stocks. BIOMASS, 8, Texas A&M University, College Station, Texas

    Google Scholar 

  • Garrison DL, Ackley SF, Buck KR (1983) A physical mechanism for establishing algal populations in frazil ice. Nature 306:363–365

    CAS  Google Scholar 

  • Garrison DL, Close AR, Reimnitz E (1989) Algae concentrated by frazil ice: evidence from laboratory experiments and field measurements. Antarct Sci 1:313–316

    Google Scholar 

  • Gosselin M, Legendre L, Demers S, Ingram RG (1985) Responses of sea-ice microalgae to climatic and fortnightly tidal inputs (Manitounuk Sound, Hudson Bay). Can J Fish Aquat Sci 42:999–1006

    Google Scholar 

  • Gradinger R, Spindler M, Weissenberger J (1992) On the structure and development of Arctic pack ice communities in Fram Strait: A multivariate approach. Polar Biol 12:727–733

    Google Scholar 

  • Horner R, Ackley SF, Dieckmann GS, Gulliksen B, Hoshiai T, Legendre L, Mel'nikov IA, Reeburgh WS, Spindler M, Sullivan CW (1992) Ecology of sea ice biota. 1. Habitat, terminology, and methodology. Polar Biol 12:417–427

    Google Scholar 

  • Isao K, Hara S, Terauchi K, Kogure K (1990) Role of sub-micrometre particles in the ocean. Nature 345:242–243

    Google Scholar 

  • Kattner G, Becker H (1991) Nutrients and organic nitrogenous compounds in the marginal ice zone of the Fram Strait. J Mar Systems 2:385–394

    Google Scholar 

  • Lara RJ, Hubberten U, Kattner G (1993) Contribution of humic substances to the dissolved nitrogen pool in the Greenland Sea. Mar Chem 41:327–336

    Google Scholar 

  • Maestrini SY, Rochet M, Legendre L, Demers S (1986) Nutrient limitation of the bottom-ice microbial biomass (southeastern Hudson Bay, Canadian Arctic). Limnol Oceanogr 31:969–982

    Google Scholar 

  • Maita Y, Yanada M (1990) Vertical distribution of total dissolved nitrogen and dissolved organic nitrogen in seawater. Geochem J 24:245–254

    Google Scholar 

  • Meese DA (1989) The chemical and structural properties of sea ice in the southern Beaufort Sea. CRREL Report 89–25, US Army Corps of Engineers. Hanover, New Hampshire, USA

    Google Scholar 

  • Mel'nikov IA, Pavlov GL (1978) Characteristics of organic carbon distribution in the waters and ice of the Arctic basin. Oceanology 18:163–167

    Google Scholar 

  • Palmisano AC, Garrison DL (1993) Microorganisms in Antarctic sea ice. In: Friedmann EI (ed) Antarctic microbiology. Wiley, New York, pp 167–218.

    Google Scholar 

  • Poltermann M (1994) Cryopelagic fauna. Ber Polarforsch 134:69–70

    Google Scholar 

  • Smith DC, Simon M, Alldredge AL, Azam F (1992) Intense hydrolytic activity on marine aggregates and implications for rapid particle dissolution. Nature 359:139–141

    Google Scholar 

  • Smith REH, Harrison WG, Harris LR, Herman AW (1990) Vertical fine structure of particulate matter and nutrients in sea ice of the high Arctic. Can J Fish Aquat Sci 47:1348–1355

    Google Scholar 

  • Spindler M (1994) Notes on the biology of sea ice in the Arctic and Antarctic. Polar Biol 14:319–327

    Google Scholar 

  • Untersteiner N (1968) Natural desalination and equilibrium salinity profile of perennial sea ice. J Geophys Res 73:1251–1257

    Google Scholar 

  • Weeks WF, Ackley SF (1986) The growth, structure and properties of sea ice. In: Untersteiner N (ed) The geophysics of sea ice. Martinus Nijhoff, Dordrecht (NATO ASI B146), pp 9–164

    Google Scholar 

  • Williams PM, Druffel ERM (1988) Dissolved organic matter in the ocean: comments on a controversy. Oceanogr Mag 1:14–17

    Google Scholar 

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Thomas, D.N., Lara, R.J., Eicken, H. et al. Dissolved organic matter in Arctic multi-year sea ice during winter: major components and relationship to ice characteristics. Polar Biol 15, 477–483 (1995). https://doi.org/10.1007/BF00237461

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