Characterization and Properties of Metallic Iron Nanoparticles: Spectroscopy, Electrochemistry, and Kinetics

Характеристика и свойства наночастиц металлического железа: спектроскопия, электрохимия и кинетика
R. Lee Penn, James T. Nurmi, Paul G. Tratnyek, Vaishnavi Sarathy, Donald R. Baer, James E. Amonette, K. Pecher, Chongmin Wang, John C. Linehan, Dean W. Matson, M. D. Driessen
2004-12-16

carbon tetrachloride reductiongroundwater remediationspectroscopy and electrochemistrysurface area-normalized rate constantszero-valent iron nanoparticles
There are reports that nano-sized zero-valent iron (Fe0) exhibits greater reactivity than micro-sized particles of Fe0, and it has been suggested that the higher reactivity of nano-Fe0 may impart advantages for groundwater remediation or other environmental applications. However, most of these reports are preliminary in that they leave a hostof potentiallysignificant(and often challenging) material or process variables either uncontrolled or unresolved. In an effort to better understand the reactivity of nano-Fe0, we have used a variety of complementary techniques to characterize two widely studied nano-Fe0 preparations: one synthesized by reduction of goethite with heat and H2 (Fe(H2)) and the other by reductive precipitation with borohydride (Fe(BH)). Fe(H2) is a two-phase material consisting of 40 nm alpha-Fe0 (made up of crystals approximately the size of the particles) and Fe3O4 particles of similar size or larger containing reduced sulfur; whereas Fe(BH) is mostly 20-80 nm metallic Fe particles (aggregates of <1.5 nm grains) with an oxide shell/coating that is high in oxidized boron. The FeBH particles further aggregate into chains. Both materials exhibit corrosion potentials that are more negative than nano-sized Fe2O3, Fe3O4, micro-sized Fe0, or a solid Fe0 disk, which is consistent with their rapid reduction of oxygen, benzoquinone, and carbon tetrachloride. Benzoquinone-which presumably probes inner-sphere surface reactions-reacts more rapidly with FeBH than Fe(H2), whereas carbon tetrachloride reacts at similar rates with FeBH and Fe(H2), presumably by outer-sphere electron transfer. Both types of nano-Fe0 react more rapidlythan micro-sized Fe0 based on mass-normalized rate constants, but surface area-normalized rate constants do not show a significant nano-size effect. The distribution of products from reduction of carbon tetrachloride is more favorable with Fe(H2), which produces less chloroform than reaction with Fe(BH).
1
Both nano-Fe0 materials have more negative corrosion potentials than iron oxide, microscale Fe0, and bulk iron, supporting rapid reduction of oxygen, benzoquinone, and carbon tetrachloride.
2
Fe(BH) reduces benzoquinone faster than Fe(H2), indicating preparation-dependent differences in inner-sphere surface reactions; carbon tetrachloride reacts at similar rates, consistent with outer-sphere electron transfer.
3
Fe(H2) produces a more favorable carbon-tetrachloride reduction product distribution, generating less chloroform than Fe(BH).
4
Nano-Fe0 shows higher mass-normalized reactivity than microscale Fe0, but surface-area-normalized rates reveal no significant intrinsic nano-size effect.
5
Two nano-zero-valent iron preparations differ substantially: Fe(H2) contains 40 nm α-Fe0 with Fe3O4, while Fe(BH) comprises 20–80 nm Fe particles formed from <1.5 nm grains and coated with oxidized boron.

Two nano-zero-valent iron (nano-Fe0) preparations: Fe(H2) and Fe(BH) particles

Their physicochemical properties, corrosion and reduction reactivity, reaction kinetics, size effects, and carbon-tetrachloride reduction product distributions

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2004-12-16
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R. Lee Penn
James T. Nurmi
Paul G. Tratnyek
Vaishnavi Sarathy
Donald R. Baer
James E. Amonette
K. Pecher
Chongmin Wang
John C. Linehan
Dean W. Matson
M. D. Driessen
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