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Home NEWS Science News Chemistry

Iron(VII) oxide created in water as new treatment oxidant

Bioengineer by Bioengineer
September 10, 2026
in Chemistry
Reading Time: 7 mins read
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Iron(VII) oxide created in water as new treatment oxidant
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Chemists have long been taught that iron, the workhorse metal of modern civilization, can be pushed to oxidation states of +4, +5, and +6 in water, but no further. Now, an international research team has shattered that boundary. In a study published in Environmental Chemistry Letters, researchers report the first direct observation of iron in the +7 oxidation state in aqueous solution, a species known as ferrate(VII) or FeVII O4−, generated at room temperature under mild alkaline conditions. The discovery, made by Virender K. Sharma of the University of Miami, Aliaksandra Lisouskaya of the University of Notre Dame, and colleagues at Ariel University and Ben-Gurion University in Israel, opens a strikingly new chapter in the chemistry of water treatment and may offer a powerful new tool against some of the most stubborn contaminants threatening drinking water supplies worldwide.

The significance of this achievement becomes clear when one considers the long and sometimes discouraging history surrounding high-valent iron. For decades, chemists have been fascinated by the upper reaches of iron’s oxidation ladder. Iron(IV) and iron(V) species are well established as fleeting but crucial intermediates in enzymatic reactions and in the activation of carbon-hydrogen bonds in organic molecules. Ferrate(VI), the simple tetra-oxyanion FeVIO42−, has earned a reputation as a green and versatile oxidant for water purification, capable of destroying pollutants and killing microorganisms while leaving behind only benign iron oxide byproducts. But ferrate(VII) long seemed out of reach. Although its chemical cousin, the permanganate ion MnVIIO4−, has been known for well over a century, the corresponding perferrate ion was widely believed to be unattainable in water. Earlier efforts produced only traces of iron(VII) oxide frozen in helium matrices at 4 Kelvin via photolysis of dioxo-iron peroxide, and an iron(VII)-nitride complex was synthesized at low temperatures in 2024, but the aqueous species eluded capture. Skeptics argued that because perferrate would be an overwhelmingly powerful oxidant, it would simply oxidize water itself under all conditions, rendering any attempt to prepare it in solution futile.

The new study overturns that assumption with an elegant experimental strategy centered on pulse radiolysis, a technique that uses short bursts of high-energy radiation to generate transient chemical species and monitor them spectroscopically in real time. The team worked at the Notre Dame Radiation Laboratory, where an 8-megaelectronvolt linear accelerator delivered nanosecond pulses of electrons into carefully prepared solutions of ferrate(VI) at pH 9.0. The solutions were saturated with nitrous oxide, a gas that rapidly converts hydrated electrons into hydroxyl radicals, the highly reactive oxidizing species responsible for the key transformation. When a 15-nanosecond pulse of 43 grays struck the solution, the hydroxyl radicals attacked the ferrate(VI) ions in a one-electron oxidation, ripping an electron away and pushing the central iron atom from +6 to +7.

The signature of the new species appeared almost immediately in the transient absorption spectrum. Deconvolution of the spectral data revealed a bleaching of the ferrate(VI) band near 510 nanometers, marking its consumption, alongside the emergence of a new absorption band at 680 nanometers. The researchers assigned this band to FeVII O4−, noting a satisfying chemical logic: the low-energy absorption maxima of the ferrate family shift progressively to the red as the oxidation state of the central iron atom increases, with iron(V) absorbing at 380 nanometers, iron(VI) at 510 nanometers, and now iron(VII) at 680 nanometers. This trend is exactly what theory predicts for ligand-to-metal charge-transfer transitions in tetrahedral oxyanions. The new species formed within twenty microseconds and decayed slowly over a timescale of three hundred microseconds, giving the team a workable window in which to characterize it.

The kinetics of the formation reaction proved to be exceptionally fast. By monitoring the growth of the 681-nanometer signal at varying concentrations of ferrate(VI), the team established pseudo-first-order kinetics and extracted a second-order rate constant of 8.0 × 10⁹ per molar per second for the reaction between ferrate(VI) and hydroxyl radical. This near diffusion-limited rate, essentially the speed limit for reactions in water, underscores how avidly the hydroxyl radical donates its oxidizing power to the ferrate ion. Control experiments in phosphate buffer versus pure water showed that phosphate does not enter the inner coordination sphere of iron(VII), since the spectra were essentially identical in both media, although decomposition proceeded somewhat faster in the buffer, likely due to ionic strength effects. The experimental findings were further bolstered by density functional theory calculations performed at the B3LYP and m06 levels with large basis sets, implicit solvation, and dispersion corrections. These computations confirmed the thermodynamic plausibility of the species, predicted a tetrahedral geometry for both iron(VI) and iron(VII) oxyanions, and calculated Fe–O bond lengths of 1.657 angstroms for iron(VI) and a distinctly shorter 1.599 angstroms for iron(VII), reflecting the stronger pull of the more highly charged central atom.

Perhaps the most consequential number to emerge from the study is the standard redox potential of the new oxidant. Using the calculated Gibbs free energy for the one-electron reduction of FeVII O4− back to ferrate(VI), combined with the standard free energy for the hydrogen electrode reference reaction, the researchers derived a redox potential of approximately 1.7 volts versus the standard hydrogen electrode, with the two different computational functionals yielding closely agreeing values of 1.69 and 1.64 volts. For context, ferrate(VI) itself, long celebrated as one of the most powerful green oxidants in water treatment, operates at roughly 1.0 volt under the same mild alkaline conditions. The new iron(VII) species thus packs substantially more oxidizing punch per electron than its predecessor, a difference that could translate into the ability to dismantle pollutants that ferrate(VI) alone cannot touch.

That capability matters because modern water treatment faces an escalating array of recalcitrant contaminants. Pharmaceuticals, per- and polyfluoroalkyl substances known as PFAS or “forever chemicals,” and other emerging pollutants resist conventional oxidation processes, driving an urgent search for stronger, safer oxidants. Ferrate chemistry has been a leading candidate precisely because it is environmentally benign: iron is abundant, inexpensive, and non-toxic, and ferrate treatment produces no harmful disinfection byproducts of the kind associated with chlorine chemistry. If the transient iron(VII) species can be harnessed, even briefly, it could extend the reach of ferrate-based treatment to chemical bonds that have so far proved impervious. The researchers emphasize that the species is transient, forming and decaying within microseconds, which paradoxically may work in its favor for practical applications. A short-lived, extremely powerful oxidant generated in situ could attack contaminants at the molecular level before decomposing into harmless iron(III) oxides, minimizing side reactions and residuals.

Of course, the road from a pulse radiolysis experiment to a working water treatment plant is a long one. The current study demonstrates generation and characterization rather than bulk production or deployment. Nevertheless, the findings rewrite fundamental inorganic chemistry textbooks and suggest new mechanistic pathways. One intriguing implication is that ferrate(VI) treatments in real water, which inevitably involve radical chemistry from various activation strategies, may already be generating trace amounts of iron(VII) without anyone knowing it. Previous work has implicated “activated ferrates” of iron(IV) and iron(V) in the remediation performance of ferrate(VI); iron(VII) now joins that roster as the most potent member yet. The team also notes that the visible absorption at 680 nanometers provides a spectroscopic fingerprint that future researchers can use to search for the species in more complex environments.

The study’s methodology deserves attention as well. The pre-mix pulse radiolysis setup, combined with a xenon arc lamp and multichannel detection system recording two-dimensional transient absorption data, allowed the researchers to capture spectra across the full range at microsecond resolution. Radiation dosimetry was performed with N2O-saturated thiocyanate solutions, and every experiment was repeated at least three times to ensure reproducibility. Time-dependent density functional theory calculations of the excited states of all three ferrate species, using natural transition orbital analysis, provided additional theoretical grounding for the spectral assignments. The convergence of two independent computational functionals on nearly identical redox potentials gives the authors, and the wider community, confidence in the result.

As the global water crisis intensifies and contaminant lists grow longer, discoveries like this one remind us that fundamental chemistry still holds surprises with direct bearing on human welfare. An oxidation state once dismissed as impossible in water has now been made, measured, and mathematically validated. Whether iron(VII) will graduate from the microsecond timescale of the radiation laboratory to the continuous flow of a treatment facility remains to be seen, but the ceiling of iron chemistry has just been raised, and with it, the horizon for clean water technology.

Subject of Research: Generation and characterization of iron(VII) oxide (FeVII O4−), a new high-valent iron oxidant, in aqueous solution for water treatment

Subject of Research: Chemistry

Article Title: Generation of iron(VII) oxide in aqueous solution, a new oxidant in water treatment

Article References: Sharma, V. K., Lisouskaya, A., Zidki, T., Jeevanandham, G., Gitin, D., Kolesnikov, M., Kornwetz, H., & Meyerstein, D. (2026). Generation of iron(VII) oxide in aqueous solution, a new oxidant in water treatment. Environmental Chemistry Letters. https://doi.org/10.1007/s10311-026-01913-3

Image Credits: AI Generated

DOI: 10.1007/s10311-026-01913-3

Keywords: ferrate, high-valent iron species, water treatment, pulse radiolysis, redox potential, iron(VII) oxide, hydroxyl radical, advanced oxidation, Environmental Chemistry Letters

Cite Scienmag News
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Bethany Barker. (September 10, 2026). Iron(VII) oxide created in water as new treatment oxidant. Scienmag. https://scienmag.com/ironvii-oxide-created-in-water-as-new-treatment-oxidant/

Bethany Barker. “Iron(VII) oxide created in water as new treatment oxidant.” Scienmag, 10 September 2026, https://scienmag.com/ironvii-oxide-created-in-water-as-new-treatment-oxidant/. Accessed 10 September 2026.

Bethany Barker. “Iron(VII) oxide created in water as new treatment oxidant.” Scienmag. September 10, 2026. https://scienmag.com/ironvii-oxide-created-in-water-as-new-treatment-oxidant/

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Tags: advanced water purification techniquesadvanced water purification technologiesaqueous chemistry of iron oxidation stateschemistry of iron oxidation states in water treatmentcontamination removal from drinking waterdiscovery of new oxidants for environmental remediationenvironmental chemistry of ironenvironmental impact of ferrate oxidantsferrate(VII) as water treatment oxidantferrate(VII) properties and applicationsferrate(VII) synthesis in aqueous solutionshigh oxidation state iron compoundshigh oxidation states of iron in aqueous solutionshigh-valent iron chemistryiron(VII) oxide in waterIron(VII) oxide in water treatmentnovel oxidants for drinking water safetynovel oxidation species in environmental chemistryoxidation of water contaminantsoxidative power of ferrate(VII)room temperature ferrate productionroom temperature synthesis of ferrate(VII)stabilization of high-valent iron speciessustainable water treatment methods

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