HR: 11:45h
AN: B32A-06 [Abstracts]
TI: Detecting Naturally-Produced Sulfide Nanoparticles by Adsorptive, Cathodic Stripping Voltammetry.
AU: * Helz, G R
EM: helz@umd.edu
AF: Departments of Geology and Chemistry & Biochemistry, University of Maryland, College Park, MD 20895, United States
AU: Krznaric, D
EM: dkrznari@irb.hr
AF: Center for Marine and Environmental Research, Rudjer Boskovic Institute, Zagreb, 10000,
Croatia (local name: Hrvatska)
AU: Bura-Nakic, E
EM: ebnakic@irb.hr
AF: Center for Marine and Environmental Research, Rudjer Boskovic Institute, Zagreb, 10000,
Croatia (local name: Hrvatska)
AU: Ciglenecki, I
EM: irena@irb.hr
AF: Center for Marine and Environmental Research, Rudjer Boskovic Institute, Zagreb, 10000,
Croatia (local name: Hrvatska)
AB:
Growing evidence implies that metal sulfide nanoparticles of natural origin exist in some aquatic environments.
These nanoparticles could play important roles as mediators of trace metal nutrition and toxicity.
Thermodynamics suggests that in sulfidic environments (total transition metal<total sulfide) the most
abundant transition metal (usually Fe) will form the predominant sulfide nanoparticle. In oxic/suboxic
environments (total transition metal>total sulfide) the most insoluble metal sulfide (usually Hg or Cu) will form
the predominant sulfide nanoparticle. New experimental methods for detecting and distinguishing between
such nanoparticles are needed. We report that mercury electrodes effectively preconcentrate a number of
different metal sulfide nanoparticles, enabling their detection by adsorptive cathodic stripping voltammetry.
Voltammetrically, nanoparticulate analytes differ fundamentally from dissolved analytes; e.g. analyte accumulation
is very sensitive to electrolyte composition and concentration in accord with the Schulze-Hardy Rule. EDTA or
acid treatment of samples is useful for distinguishing highly insoluble nanoparticles (HgS, CuS) from FeS.
Nanoparticulate sulfur potentially interferes. Supersaturated solutions can generate artifactual analyte on Hg
electrode surfaces. Despite such potential pitfalls, progress is encouraging. Preliminary, qualitative results from
natural waters will be reported.
DE: 0404 Anoxic and hypoxic environments (4802, 4834)
DE: 0488 Sulfur cycling
DE: 0489 Trace element cycling (4875)
DE: 4809 Colloids
SC: Biogeosciences [B]
MN: 2007 Fall Meeting