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Characterizing Colloidal Material in Natural Waters

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Abstract

Sampling has inherent uncertainties when applied tothe sub-micron fraction of natural waters.Processes of aggregation, biological activity andchemical transformation potentially effect changesimmediately after a sample is taken from the waterbody and there is no suitable method of samplestabilization. The size distribution and associatedphysical and chemical parameters of colloids in theaquatic environment can be effectively stable overshort periods of time (about two days under idealconditions, but frequently much shorter timeintervals). To achieve accurate representations of thesize distribution and associated colloidalcharacteristics in situ techniques are required,although adequate approximations may be obtained undersome circumstances if separation is done immediatelyafter sampling. This paper reviews the currentlyavailable strategies for separation and analysis ofcolloids from natural waters (primarily filtration andcentrifugation) and discusses their uses andlimitations, as well as potential uses of promisingtechniques (voltammetry, gels, field-flowfractionation, SPLITT). For small colloids, thetechniques of voltammetry, dialysis, DET and DGT maybe used to obtain in situ information. Forlarger colloids it is more difficult to performmeasurements in situ and a combination of rapidfractionation procedures, including filtration,field-flow fractionation and SPLITT, may still berequired.

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References

  • Apte, S. and Rogers, H. R. (1993) Speciation and partitioning of atrazine and gamma hexachlorobenzene in estuarine waters. Science of the Total Environment 132, 313–325.

    Google Scholar 

  • Beckett, R. (1991) Field-flow fractionation-ICP-MS: A powerful new tool for characterizing macromolecules and particles. Atomic Spectroscopy 12, 228–232.

    Google Scholar 

  • Beckett, R. and Hart, B. (1993) Use of field-flow fractionation techniques to characterize aquatic particles, colloids and macromolecules. In Environmental Particles Volume 2. (eds. J. Buffle and H.P. Van Leeuwen). Lewis Publishers.

  • Beckett, R., Nicholson, G., Hotchin, D. and Hart, B. (1992) The use of sedimentation field-flow fractionation to study suspended particulate matter. Hydrobiologia 235/236, 697–710.

    Google Scholar 

  • Beckett, R., Nicholson, G., Hart, B. T., Hansen, M. and Giddings, J. C. (1988a) Separation and size characterisation of colloidal particles in river water by sedimentation field-flow fractionation. Water Research 22, 1535–1545.

    Google Scholar 

  • Beckett, R., Bigelow, J. C., Jhang, J. and Giddings, J. C. (1988b) Determination of molecular weight distributions of fulvic and humic acids using field flow fractionation. Environmental Science and Technology 21, 289–295.

    Google Scholar 

  • Benes, P. (1980) Semi continuous monitoring of truly dissolved forms of trace elements using dialysis in situ. I. Principles and conditions. Water Research 14, 511–513.

    Google Scholar 

  • Benes, P. and Steinnes, E. (1974) In situ dialysis for the determination of the state of trace elements in natural waters. Water Research 8, 947–953.

    Google Scholar 

  • Benoit, G., Oktay-Marshall, S. D., Cantu, A., Hood, E., Coleman, C., Corapcioglu, M., and Santschi, P. (1994) Partitioning of Cu, Pb, Ag, Zn, Fe, Al and Mn between filter retained particles, colloids and solution in 6 Texas estuaries. Marine Chemistry 45, 307–336.

    Google Scholar 

  • Borg, H. and Andersson, P. (1984) Fractionation of trace metals in acidified fresh waters by in situ dialysis. Verh. Internat. Verein Limnol. 22, 725–729.

    Google Scholar 

  • Brendel, P. J. and Luther, G. W. (1995) Development of a gold amalgam voltammetric micro-electrode for the determination of dissolved Fe, Mn, O2 and S(II) in porewaters of marine and freshwater sediments. Environmental Science and Technology 29, 751–761.

    Google Scholar 

  • Buffle, J. (1988) Complexation Reactions in Aquatic Systems: An Analytical Approach. Ellis Harwood, Chichester.

    Google Scholar 

  • Buffle, J. and Leppard, G. G. (1995a) Characterisation of aquatic colloids and macromolecules. 1. Structure and behaviour of colloidal material. Environmental Science and Technology 29, 2169–2175.

    Google Scholar 

  • Buffle, J. and Leppard, G. G. (1995b) Characterisation of aquatic colloids and macromolecules. 2. Key role of physical structures on analytical results. Environmental Science and Technology, 2176–2184.

  • Buffle, J. and Van Leeuwen, H. P. (1992) Environmental Particles. Volume 1. Lewis Publishers.

  • Buffle, J. and Van Leeuwen, H. P. (1993) Environmental Particles. Volume 2. Lewis Publishers.

  • Buffle, J., Perret, D. and Newman, M. (1992) The use of filtration and ultrafiltration for size fractionation of aquatic particles, colloids and macromolecules. In (eds. J. Buffle and H.P. Van Leeuwen). Environmental Particles. Volume 1. Lewis Publishers.

  • Buffle, J. Zali, O., Zumstein, J., de Vitre, R. and Haerdi, W. (1988) Combining analytical methods for direct measurement of speciation, application to seasonal changes of iron, sulphur and pedogenic and aquogenic organic constituents in a productive lake. The Science of the Total Environment 64, 41–59.

    Google Scholar 

  • Carignan, R., Rapin, F. and Tessier, A. (1985) Sediment porewater sampling for metal analysis: A comparison of techniques. Geochimica et Cosmochimica Acta 49, 2493–2497.

    Google Scholar 

  • Chen, Y. (1993) Physico-chemical characterisation of colloids in river waters and studies of experimental conditions. PhD thesis, University of Geneva.

  • Chen, Y. and Buffle, J. (1996a) Physico-chemical and microbial preservation of colloid characteristics of natural water samples. I. Water Research 30, 2178–2184.

    Google Scholar 

  • Chen, Y. and Buffle, J. (1996b) Physico-chemical and microbial preservation of colloid characteristics of natural water samples. II. Water Research 30, 2178–2184.

    Google Scholar 

  • Chittleborough, D. J., Hotchin, D. M. and Beckett, R. (1992) Sedimentation field-flow fractionation: A new technique for the fractionation of soil colloids. Soil Science 153, 341–348.

    Google Scholar 

  • Davison, W. and Zhang, H. (1994). In situ speciation measurements of trace components in natural waters using thin film gels. Nature 367, 546–548.

    Google Scholar 

  • Davison, W., Zhang, H. and Grime, G. (1994) Performance characteristics of gel probes used for measuring the chemistry of pore waters. Environmental Science and Technology 28, 1623–1632.

    Google Scholar 

  • De Vitre, R. R. (1986) Multi-method characterisation of the forms of iron, manganese and sulphur in a eutrophic lake (Bret, Vand). PhD thesis, University of Geneva, Switzerland.

    Google Scholar 

  • Douglas, G. B., Gray, C. M., Hart, B. T. and Beckett, R. (1995) A strontium isotopic investigation of the origin of suspended particulate material (SPM) in the Murray-Darling river system, Australia. Geochimica et Cosmochimica Acta 59, 3799–3815.

    Google Scholar 

  • Douglas, G., Beckett, R. and Hart, B. (1993) Fractionation and concentration of suspended particulate matter in natural waters. Hydrological Processes 7, 177–191.

    Google Scholar 

  • Droppo, I. G., Krishnappan, B. G., Rao, S. S. and Ongley, E. D. (1995) Investigation of a sequential filtration technique for particle fractionation. Environmental Science and Technology 29, 546–550.

    Google Scholar 

  • Everett, D. H. (1988) Basic principles of colloid chemistry. Royal Society of Chemistry.

  • Filella, M. and Buffle, J. (1993) Factors affecting the stability of sub-micron colloids in natural waters. Colloids and Surfaces A: Physico-Chemical and Engineering Aspects 73, 255–273.

    Google Scholar 

  • Fuh, C. B., Myers, M. and Giddings, J. C. (1993) Analytical SPLITT fractionation: rapid particle size analysis and measurement of oversized particles. Analytical Chemistry 64, 3125–3132.

    Google Scholar 

  • Gasser, U. G., Juchler, S. J. and Sticher, H. (1994) Chemistry and speciation from serpentinitc soils: importance of colloids in the transportation of Cr, Fe, Mg and Ni (1994). Soil Science 158, 314–322.

    Google Scholar 

  • Giddings, J. C. (1993) Field-flow fractionation: analysis of macro-molecular, colloidal and particulate materials. Science 260, 1456–1465.

    Google Scholar 

  • Giddings, J. C. (1985). A system based on split-flow lateral-transport thin (SPLITT) separation cells for rapid and continuous particle fractionation. Separation Science and Technology, 20, 749–768.

    Google Scholar 

  • Guo, L., Coleman, C. and Santschi, P. (1994) The distribution of colloidal and dissolved organic carbon in the Gulf of Mexico. Marine Chemistry 45, 105–119.

    Google Scholar 

  • Hamilton-Taylor, J., Yang, Y-L., Arewgoda, C. M., Hewitt, C. N. and Davison, W. (1993) The trace metal dissolution kinetics of three rural atmospheric aerosols in a range of natural fresh water types. Water Research 27, 243–254.

    Google Scholar 

  • Harper, M., Davison, W. and Tych, W. (1997) Temporal, spatial, and resolution constraints for in situ sampling devices utilizing diffusional equilibration: Dialysis and DET. Environmental Science and Technology (submitted).

  • Hart, B., Douglas, G., Beckett, R., Van Put, A. and Van Grieken, R. (1993) Characterisation of colloidal and particulate matter transported by the Magela Creek system, Northern Australia. Hydrological Processes 7, 105–118.

    Google Scholar 

  • Hesslein, R. H. (1976) An in situ sampler for close interval porewater studies. Limnology and Oceanography 21, 912.

    Google Scholar 

  • Holm, P. E., Anderson, S. and Christensen, T. H. (1995) Speciation of dissolved CD; interpretation of dialysis, ion exchange and computer (GEOCHEM) methods. Water Research 29, 803–809.

    Google Scholar 

  • Horowitz, A. J., Lum, K. R., Garbarino, J. R., Hall, G. E. M., Lemieux, C. and Demas, C. R. (1996) Problems associated with using filtration to define dissolved trace element concentrations in natural water samples. Environmental Science and Technology 30, 954–963.

    Google Scholar 

  • Horowitz, A. J., Elrick, K. A. and Colberg, M. R. (1992) The effect of membrane filtration artifacts on dissolve trace element concentrations. Water Research 26, 753–763.

    Google Scholar 

  • Karaiskakis, G., Graff, K., Caldwell, K. and Giddings, J. C. (1982) Sedimentation field-flow fractionation of colloidal particles in river water. International Journal Environmental Analytical Chemistry 12, 1–15.

    Google Scholar 

  • Keil, R. G., Tsamakis, E., Fuh, B., Giddings, J. C. and Hedges, J. I. (1993) Mineralogical and textural controls on the organic composition of coastal marine sediments: Hydrodynamic separation using SPLITT fractionation. Geochimica et Cosmochimica Acta 58, 879–893.

    Google Scholar 

  • Laxen, D. P. H. and Chandler, I. M. (1983) Size distribution of iron and managanese species in freshwaters. Geochimica et Cosmochimica Acta 47, 731–741.

    Google Scholar 

  • Laxen, D. P. H. and Chandler, I. M. (1982) Comparison of filtration techniques for size distribution in freshwaters. Analytical Chemistry 54, 1350–1355.

    Google Scholar 

  • Ledin, A., Karlsonn, S., Duker, A., and Allard, B. (1995) Characterisation of the sub-micrometer phase in surface waters. A review. Analyst 120, 603–608.

    Google Scholar 

  • Ledin, A., Karlsson, S., Duker, A. and Allard, B. (1994) Measurements in situ of concentration and size distribution of colloidal matter in deep groundwater by photon correlation spectroscopy. Water Research 28, 1539–1545.

    Google Scholar 

  • Ledin, A., Karlsson, S., Duker, A. and Allard, B. (1993) Applicability of photon correlation spectroscopy for measurements of concentration and size distribution of colloids in natural waters. Analytical Chimica Acta 281, 421–428.

    Google Scholar 

  • Martin, J.-M., Dai, M.-H. (1995) Significance of colloids in the bio-geochemical cycling of organic carbon and trace metals in the Venice Lagoon (Italy). Limnology and Oceanography 40, 119–131.

    Google Scholar 

  • Masselter, S., Zemann, A. and Bobleter, O. (1995) Analysis of lignin degradation products by capillary electrophoresis. Chromalographia 40, 51–57.

    Google Scholar 

  • Moran, S. B. and Buessler, K. O. (1993) Size fractionated 234Th in continental shelf waters off New England: Implications for the role of colloids in oceanic trace metal scavenging. Journal of Marine Research 51, 893–922.

    Google Scholar 

  • Bradley Moran, S. and Moore, R. (1989) The distribution of colloidal alumnium and carbon in coastal and and open ocean waters off Nova Scotia. Geochimica et Cosmochimica Acta 53, 2519–2527.

    Google Scholar 

  • Morrison, G. M. P. (1987) Bioavailable metal uptake rate determination in polluted waters by dialysis with receiving resins. Environmental Technology Letters 8, 393–402.

    Google Scholar 

  • Murphy, D. M. (1995) Investigation of suspended particulate matter and associated contaminants in natural waters using sedimentation field-flow fractionation techniques. PhD. Thesis, Monash University, Melbourne.

    Google Scholar 

  • Perret, D., Newman, M. E., Negre, J.-C., Chen, Y. and Buffle, J. (1994) Sub-micron particles in the Rhine River-1. Physico-chemical characterisation. Water Research 28, 91–106.

    Google Scholar 

  • Pizzaro, J., Belzile, N., Filella, M., Leppard, G., Negre, J.-C., Perret, D. and Buffle, J. (1995) Coagulation/sedimentation of sub-micron iron particles in a eutrophic lake. Water Research 617–632.

  • Rigol, A. Lopez-Sanchez, J. F. and Rauret, G. (1994) Capillary zone electrophoresis of humic acids. Journal of Chromatography 664, 301–305.

    Google Scholar 

  • Salim R. and Cooksey B. G. (1981) The effect of centrifugation on the suspended particles of river waters. Water Research 15, 835–839.

    Google Scholar 

  • Salomens, W. and Forstner, U. (1984) Metals in the Hydrocycle. Springer, Heidelberg.

    Google Scholar 

  • Sempere, R., Cauwet, G. and Randon, J. (1994) Ultrafiltration of seawater with a zirconium and aluminium oxide tubular membrane: Application to the study of colloidal organic carbon distribution in an estuarine bottom nepholoid layer. Marine Chemistry 46, 49–60.

    Google Scholar 

  • Sharma, R. V., Edwards, R. T. and Beckett R. (1993) Physical characterisation and quantification of bacteria by sedimentation field-flow fractionation. Applied and Environmental Microbiology 59, 1864–1875.

    Google Scholar 

  • Sigleo, A. C. and Helz, G. R. (1981) Composition of colloidal material: major and trace elements. Geochimica et Cosmochimica Acta 45, 2501–2509.

    Google Scholar 

  • Sigleo, A. C., Hoerng, T. C. and Helz, G. R. (1982) Composition of estuarine colloidal material: organic components. Geochimica et Cosmochimica Acta 46, 1619–1626.

    Google Scholar 

  • Stumm, W., Sigg, L. and Sulzberger, B. (1994). The role of coordination at the surface of aquatic particles. In (eds. J. Buffle and R. R. De Vitre). Chemical and Biological Regulation of Aquatic Systems. Lewis Publishers.

  • Stumm, W. (1993) Aquatic colloids as chemical reactants: Surface structure and reactivity. Colloids and surfaces A: Physico-chemical and Engineering Aspects 73, 1–19.

    Google Scholar 

  • Stumm, W. (ed). (1981) Aquatic Surface Chemistry. Wiley, New York.

    Google Scholar 

  • Stumm, W. and Morgan, J. (1987) Aquatic Chemistry. Wiley, New York.

    Google Scholar 

  • Swarzenski, P. W., Mckee, B. A. and Booth, J. G. (1995) Uranium geochemistry in the Amazon shelf: Chemical phase partitioning and cycling across the salinity gradient. Geochimica et Cosmochimica Acta 59, 1–7.

    Google Scholar 

  • Tanizaki, Y., Shimokawa, T. and Yamazaki, M. (1992) Physico-chemical speciation of trace elements in urban streams by size fractionation. Water Research 26, 55–63.

    Google Scholar 

  • Tercier, M. and Buffle, J. (1996) Antifouling membrane covered voltammetric microsensor for in-situ measurements in natural waters. Analytical Chemistry 68, 3670–3678.

    Google Scholar 

  • Tercier, M. L. and Buffle, J. (1993) In situ voltammetric measurements in natural waters: Future prospects and challenges. Electroanalysis 5, 187–200.

    Google Scholar 

  • Tercier, M. L., Parthasanathy, N. and Buffle, J. (1995) Reproducible, reliable and rugged mercury-plated, indium based micro-electrodes for in situ measurements in natural waters. Electroanalysis 55–63.

  • Wilkinson, K., Negre, J. C. and Buffle, J. (1996) Coagulation of colloidal material in surface waters: The role of natural organic matter. Journal of Contaminant Hydrology (in press).

  • Yeats, P. A. and Strain, P. M. (1990) Cross flow filtration of colloids from aquatic environments. Limnology and Oceanography 35, 1368–1375.

    Google Scholar 

  • Zhang, H. and Davison, W. (1995) Performance characteristics of diffusion gradients in thin films for the in situ measurement of trace metals in aqueous solutions. Analytical Chemistry 67, 3391–3400.

    Google Scholar 

  • Zhang, H., Davison, W., Miller, S. and Tych, W. (1995) In situ resolution measurements of fluxes of Ni, Cu, Fe and Mn and concentrations of Zn and Cd in porewaters by DGT. Geochimica et Cosmochimica Acta 59, 4181–4192.

    Google Scholar 

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Lead, J., Davison, W., Hamilton-Taylor, J. et al. Characterizing Colloidal Material in Natural Waters. Aquatic Geochemistry 3, 213–232 (1997). https://doi.org/10.1023/A:1009695928585

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