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Relative Effect of Temperature and pH on Diel Cycling of Dissolved Trace Elements in Prickly Pear Creek, Montana

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Abstract

Diel (24 hr) cycles in dissolved metal and As concentrations have been documented in many northern Rocky Mountain streams in the U.S.A. The cause(s) of the cycles are unknown, although temperature- and pH-dependent sorption reactions have been cited as likely causes. A light/dark experiment was conducted to isolate temperature and pH as variables affecting diel metal cycles in Prickly Pear Creek, Montana. Light and dark chambers containing sediment and a strand of macrophyte were placed in the stream to simulate instream temperature oscillations. Photosynthesis-induced pH changes were allowed to proceed in the light chambers while photosynthesis was prevented in the dark chambers. Water samples were collected periodically for 22 hr in late July 2001 from all chambers and the stream. In the stream, dissolved Zn concentrations increased by 300% from late afternoon to early morning, while dissolved As concentrations exhibited the opposite pattern, increasing 33% between early morning and late afternoon. Zn and As concentrations in the light chambers showed similar, though less pronounced, diel variations. Conversely, Zn and As concentrations in the dark chambers had no obvious diel variation, indicating that light, or light-induced reactions, caused the variation. Temperature oscillations were nearly identical between light and dark chambers, strongly suggesting that temperature was not controlling the diel variations. As expected, pH was negatively correlated (P < 0.01) with dissolved Zn concentrations and positively correlated with dissolved As concentrations in both the light and dark chambers. From these experiments, photosynthesis-induced pH changes were determined to be the major cause of the diel dissolved Zn and As cycles in Prickly Pear Creek. Further research is necessary in other streams to verify that this finding is consistent among streams having large differences in trace-element concentrations and mineralogy of channel substrate.

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References

  • Angove, M. J., Johnson, B. B. and Wells, J. D.: 1998, 'The influence of temperature on the adsorption of cadmium (II) and cobalt (II) on kaolinite', J. Colloid Interf. Sci. 204, 93–103.

    Google Scholar 

  • Barrow, N. J.: 1986, 'Testing a mechanistic model. II. The effects of time and temperature on the reaction of zinc with a soil', J. Soil Sci. 37, 277–286.

    Google Scholar 

  • Barrow, N. J.: 1992, 'A brief discussion of the effect of temperature on the reaction of inorganic ions with soil', J. Soil Sci. 43, 37–45.

    Google Scholar 

  • Benjamin, M. M. and Leckie, J. O.: 1981, 'Multiple-site adsorption of Cd, Cu, Zn, and Pb on amorphous iron oxyhydroxide', J. Colloid Interf. Sci. 79, 209–221.

    Google Scholar 

  • Bourg, A. C. M. and Bertin, C.: 1996, 'Diurnal variations in the water chemistry of a river contaminated by heavy metals: Natural cycling and anthropic influence', Water, Air, and Soil Pollut. 86, 101–116.

    Google Scholar 

  • Brick, C. M. and Moore, J. N.: 1996, 'Diel variation of trace metals in the upper Clark Fork River, Montana', Environ. Sci. Tech. 30, 1953–1960.

    Google Scholar 

  • Conner, B. F., Currier, J. P. and Woodworth, M. T.: 2001, 'Results of the U.S. Geological Survey's Analytical Evaluation Program for Standard Reference Samples Distributed in October 2000', U.S. Geol. Surv. Open-File Report 01-137, Denver, CO, U.S.A., pp. 116.

    Google Scholar 

  • Farrar, J. W.: 1999, 'Results of the U.S. Geological Survey's Analytical Evaluation Program for Standard Reference Samples Distributed in October 1999', U.S. Geol. Surv. Open-File Report 00-227, Denver, CO, U.S.A., pp. 107.

    Google Scholar 

  • Fuller, C. C. and Davis, J. A.: 1989, 'Influence of coupling of sorption and photosynthetic processes on trace elements cycles in natural waters', Nature 340, 52–54.

    Google Scholar 

  • Goldberg, S.: 1986, 'Chemical modelling of arsenate adsorption on aluminum and iron oxide minerals', Soil Sci. Soc. Am. J. 50, 1154–1157.

    Google Scholar 

  • Hill, W. R., Bednarek, A. T. and Larsen, I. L.: 2000, 'Cadmium sorption and toxicity in autotrophic biofilms', Can. J. Fish. Aquat. Sci. 57, 530–537.

    Google Scholar 

  • Klein, T. L., Thamke, J. N. and Farag, A.M.: 2001, 'Water-quality, Biology, and Streambed Sediment Data and Preliminary Geochemical Interpretations for Streams in the Upper Prickly Pear Creek Watershed, Montana, 2000', U.S. Geol. Surv. Open-File Rep. 01-280, Denver, CO, U.S.A., pp. 59.

    Google Scholar 

  • Machesky, M. L.: 1990, 'Influence of Temperature on Ion Adsorption by Hydrous Metal Oxides', in D. C. Melchior and R. L. Bassett (eds), Chemical Modeling of Aqueous Systems II, Symposium Series 416, American Chemical Society, Washington D.C., U.S.A., pp. 282–292.

    Google Scholar 

  • McCleskey, R. B., Nordstrom, D. K. and Ball, J. W.: 2003, 'Metal Interferences and their Removal Prior to the Determination of As(T) and As(III) in Acid Mine Waters by Hydride Generation Atomic Absorption Spectrometry', U.S. Geol. Surv. Water-Resources Investigations Rep. 03-4117, U.S. Geological Survey, Boulder, CO, U.S.A., pp. 14.

    Google Scholar 

  • McKenzie, R.M.: 1980, 'The adsorption of lead and other heavy metals on oxides of manganese and iron', Aust. J. Soil Res. 18, 61–73.

    Google Scholar 

  • McKnight, D. M., Kimball, B. A. and Bencala, K. E.: 1988, 'Iron photoreduction and oxidation in an acidic mountain stream', Science 240, 637–640.

    Google Scholar 

  • Nimick, D. A., Gammons, C. H., Cleasby, T. E., Madison, J. P., Skaar, D. and Brick, C. M.: 2003, 'Diel variations in dissolved metal concentrations in streams: Occurrence and possible causes', Water Resour. Res. 39, 1247, doi:10.1029/WR001571.

    Google Scholar 

  • Nimick, D. A., Moore, J. N., Dalby, D. E. and Savka, M.W.: 1998, 'The fate of geothermal arsenic in the Madison and Missouri Rivers, Montana and Wyoming', Water Resour. Res. 34, 3051–3067.

    Google Scholar 

  • Nordstrom, D. K. and Alpers, C. N.: 1999, 'Geochemistry of AcidMineWaters', in G. S. Plumlee and M. J. Logsdon (eds), The Environmental Geochemistry of Mineral Deposits, Rev. Econ. Geol., Vol. 6A, Soc. Econ. Geol. Inc., Little, CO, U.S.A., pp. 133–160.

    Google Scholar 

  • Norvell, W. A. and Lindsay, W. L.: 1970, 'Lack of evidence for ZnSiO3 in soils', Soil Sci. Soc. Amer. Proc. 34, 360–361.

    Google Scholar 

  • Parkhurst, D. L. and Appelo, C. A. J.: 1999, 'User's Guide to PHREEQC (Version 2) – A Computer Program for Speciation, Batch-reaction, One-dimensional Transport, and Inverse Geochemical Calculations', U.S. Geol. Surv. Water-Resources Investigation Rep. 99-4259, U.S. Geological Survey, Denver, CO, U.S.A., pp. 312.

  • Roby, R. N., Ackerman, F. B., Fulkerson, F. B. and Crowley, F. A.: 1960, 'Mines and Mineral Deposits (Except Fuels), Jefferson County, Montana', Mont. Bur. Mines Geol. Bull. 16; Montana Bureau Mines Geology, Butte, MT, U.S.A., pp. 122.

    Google Scholar 

  • Rodda, D. P., Johnson, B. B. and Wells, J. D.: 1996, 'Modeling the effect of temperature on adsorption of lead (II) and zinc (II) onto goethite at constant pH', J. Colloid Interf. Sci. 184, 365–377.

    Google Scholar 

  • Scheckel, K. G. and Sparks, D. L.: 2001, 'Temperature effects on nickel sorption kinetics at the mineral-water interface', Soil Sci. Soc. Am. J. 65, 719–728.

    Google Scholar 

  • Schindler, P. W., Fürst, B., Dick, B. and Wolf, P. U.: 1976, 'Ligand properties of surface silanol groups. I. Surface complex formation with Fe3+, Cu2+, Cd2+, and Pb2+, J. Colloid Interf. Sci. 55, 469–475.

    Google Scholar 

  • Shields, R. R., White, M. K., Ladd, P. B., Chambers, C. L. and Dodge, K. A.: 2002, 'Water Resources Data Montana Water Year 2001', U.S. Geol. Surv. Water-Data Rep. MT-01-1, U.S. Geological Survey, Helena, MT, U.S.A., pp. 672.

    Google Scholar 

  • Srivastava, A. and Srivastava, P. C.: 1990, 'Adsorption-desorption behaviour of zinc(II) at iron(III) hydroxide-aqueous solution interface as influenced by pH and temperature', Environ. Pollut. 68, 171–180.

    Google Scholar 

  • Stumm, W. and Morgan, J. J.: 1996, Aquatic Chemistry, 3rd ed., John Wiley & Sons, New York, pp. 1022.

    Google Scholar 

  • Trivedi, P. and Axe, L.: 2000, 'Modeling Cd and Zn sorption to hydrous metal oxides', Environ. Sci. Tech. 34, 2215–2223.

    Google Scholar 

  • Xie, Y.: 2002. 'Experimental Investigation of the Causes of Diurnal Cycling of Zinc in a Stream Impacted by Mine Drainage', M.S. Thesis, Dept. of Environmental Engineering, Montana Tech of The University of Montana, pp. 62.

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Correspondence to Clain A. Jones.

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Jones, C.A., Nimick, D.A. & McCleskey, R.B. Relative Effect of Temperature and pH on Diel Cycling of Dissolved Trace Elements in Prickly Pear Creek, Montana. Water, Air, & Soil Pollution 153, 95–113 (2004). https://doi.org/10.1023/B:WATE.0000019934.64939.f0

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