4.6 Article

Synthesis of ferrate (Fe(vi))-coated sand for stabilized reactivity and enhanced treatment of phenol

相关参考文献

注意:仅列出部分参考文献,下载原文获取全部文献信息。
Article Engineering, Environmental

Ferrate(VI)-peracetic acid oxidation process: Rapid degradation of pharmaceuticals in water

Kyriakos Manoli et al.

Summary: This study introduces a Fe(VI)-peracetic acid oxidation process for rapid degradation of micropollutants in water, showing great potential for water treatment applications.

CHEMICAL ENGINEERING JOURNAL (2022)

Review Engineering, Environmental

Reactive High-Valent Iron Intermediates in Enhancing Treatment of Water by Ferrate

Virender K. Sharma et al.

Summary: Efforts are being made to enhance the reactivity of ferrate by generating highly reactive iron intermediates (Fe-V and Fe-IV) from the tetraoxy anion of iron in the +6 oxidation state. Various strategies, such as addition of acid, metal ions, and reductants, are utilized to produce Fe-V and Fe-IV species for more efficient treatment of polluted water. Kinetic modeling and DFT calculations provide opportunities to distinguish between Fe-IV and Fe-V in order to improve oxidation reactions using ferrate.

ENVIRONMENTAL SCIENCE & TECHNOLOGY (2022)

Article Nanoscience & Nanotechnology

Hydrolysis and Condensation of Tetraethyl Orthosilicate at the Air-Aqueous Interface: Implications for Silica Nanoparticle Formation

Harpreet Kaur et al.

Summary: The study systematically investigated the impact of TEOS on the interfacial water structure during hydrolysis and condensation processes, revealing the characteristics of these processes and confirming the formation of monodisperse silica nanoparticles through DLS measurements.

ACS APPLIED NANO MATERIALS (2022)

Article Engineering, Environmental

Efficient activation of ferrate(VI) by colloid manganese dioxide: Comprehensive elucidation of the surface-promoted mechanism

Mengfan Luo et al.

Summary: Current research is focused on enhancing the oxidation activity of ferrate (Fe(VI)) by introducing additional energy or reducing agents. Interestingly, colloid manganese dioxide (cMnO(2)) is found to promote Fe(VI) removal of various contaminants through a surface-promoted pathway. The study suggests that high-valent Fe species are the main oxidants in the cMnO2-Fe(VI) system, and Fe(VI) can combine with vacancies in cMnO(2) to generate Fe(IV)/Fe(V). The decay products of Fe(VI) play a vital role in further enhancing the formation of Fe(IV) and Fe(V). Furthermore, cMnO(2) shows superior catalytic stability in complex waters, making it a promising reductant for Fe(VI) activation.

WATER RESEARCH (2022)

Review Environmental Sciences

Removal of microorganic pollutants in aquatic environment: The utilization of Fe(VI)

Junjie Yu et al.

Summary: This paper reviews the application of Fe(VI) in the treatment of microorganic pollutants (MOPs) in aquatic environment. Fe(VI) has the dual functionality of oxidation and coagulation, and can effectively remove various pollutants. It can also be used in combination with traditional coagulants or as a pretreatment for membrane treatment. The study provides guidelines for the application and development of Fe(VI) in the removal of MOPs, summarizing control parameters, utilization methods, and toxicity effects.

JOURNAL OF ENVIRONMENTAL MANAGEMENT (2022)

Article Engineering, Environmental

Effect of Metal Ions on Oxidation of Micropollutants by Ferrate(VI): Enhancing Role of FeIV Species

Xianbing Zhang et al.

Summary: This study investigated the oxidation of recalcitrant micropollutants by combining Fe-VI and Fe(III), finding that the addition of Fe(III) enhances the oxidation process. Fe-IV was identified as the main species contributing to the increase in ATL removal, with natural organic matter inhibiting the removal of pollutants.

ENVIRONMENTAL SCIENCE & TECHNOLOGY (2021)

Review Engineering, Environmental

Application of Fe(VI) in abating contaminants in water: State of art and knowledge gaps

Shuchang Wang et al.

Summary: This article summarizes the applications and challenges of Fe(VI) in water purification, including the self-decay mechanism, methods for performance optimization, and future research directions.

FRONTIERS OF ENVIRONMENTAL SCIENCE & ENGINEERING (2021)

Article Engineering, Environmental

Rapid and strong biocidal effect of ferrate on sulfidogenic and methanogenic sewer biofilms

Xiaofang Yan et al.

WATER RESEARCH (2020)

Article Engineering, Environmental

Overlooked Role of Fe(IV) and Fe(V) in Organic Contaminant Oxidation by Fe(VI)

Jiahui Zhu et al.

ENVIRONMENTAL SCIENCE & TECHNOLOGY (2020)

Article Engineering, Environmental

Ecotoxicity variation through parabens degradation by single and catalytic ozonation using volcanic rock

Joao F. Gomes et al.

CHEMICAL ENGINEERING JOURNAL (2019)

Article Engineering, Environmental

Enhanced oxidation of antibiotics by ferrate(VI)-sulfur(IV) system: Elucidating multi-oxidant mechanism

Mingbao Feng et al.

CHEMICAL ENGINEERING JOURNAL (2018)

Article Engineering, Environmental

Performances and mechanisms of efficient degradation of atrazine using peroxymonosulfate and ferrate as oxidants

Shaohua Wu et al.

CHEMICAL ENGINEERING JOURNAL (2018)

Article Engineering, Environmental

Oxidation Processes in Water Treatment: Are We on Track?

Urs von Gunten

ENVIRONMENTAL SCIENCE & TECHNOLOGY (2018)

Review Engineering, Environmental

Evaluation of advanced oxidation processes for water and wastewater treatment - A critical review

David B. Miklos et al.

WATER RESEARCH (2018)

Article Engineering, Environmental

Emergency water treatment with ferrate(VI) in response to natural disasters

Junkui Cui et al.

ENVIRONMENTAL SCIENCE-WATER RESEARCH & TECHNOLOGY (2018)

Article Chemistry, Multidisciplinary

Mechanism of Water Oxidation by Ferrate(VI) at pH 7-9

Gui Chen et al.

CHEMISTRY-A EUROPEAN JOURNAL (2018)

Article Engineering, Environmental

Is Sulfate Radical Really Generated from Peroxydisulfate Activated by Iron(II) for Environmental Decontamination?

Zhen Wang et al.

ENVIRONMENTAL SCIENCE & TECHNOLOGY (2018)

Article Engineering, Environmental

Impact of Phosphate on Ferrate Oxidation of Organic Compounds: An Underestimated Oxidant

Zhuang-Song Huang et al.

ENVIRONMENTAL SCIENCE & TECHNOLOGY (2018)

Review Chemistry, Multidisciplinary

A critical review on arsenic removal from water using iron-based adsorbents

Linlin Hao et al.

RSC ADVANCES (2018)

Article Engineering, Environmental

Silica gel-enhanced oxidation of caffeine by ferrate(VI)

Kyriakos Manoli et al.

CHEMICAL ENGINEERING JOURNAL (2017)

Article Environmental Sciences

Rapid removal of organic pollutants by activation sulfite with ferrate

Jing Zhang et al.

CHEMOSPHERE (2017)

Article Chemistry, Multidisciplinary

Review on High Valent Fe-VI (Ferrate): A Sustainable Green Oxidant in Organic Chemistry and Transformation of Pharmaceuticals

Virender K. Sharma et al.

ACS SUSTAINABLE CHEMISTRY & ENGINEERING (2016)

Article Engineering, Environmental

Influence of Dissolved Silicate on Rates of Fe(II) Oxidation

Andrew S. Kinsela et al.

ENVIRONMENTAL SCIENCE & TECHNOLOGY (2016)

Article Chemistry, Physical

Impact of inorganic buffering ions on the stability of Fe(VI) in aqueous solution: role of the carbonate ion

Michal Kolar et al.

PHYSICAL CHEMISTRY CHEMICAL PHYSICS (2016)

Article Engineering, Environmental

Bromide oxidation by ferrate(VI): The formation of active bromine and bromate

Yanjun Jiang et al.

WATER RESEARCH (2016)

Review Chemistry, Multidisciplinary

Ferrates: Greener Oxidants with Multimodal Action in Water Treatment Technologies

Virender K. Sharma et al.

ACCOUNTS OF CHEMICAL RESEARCH (2015)

Article Engineering, Environmental

Characterization of Particles from Ferrate Preoxidation

Joseph E. Goodwill et al.

ENVIRONMENTAL SCIENCE & TECHNOLOGY (2015)

Article Engineering, Environmental

Effect of Different Solutes, Natural Organic Matter, and Particulate Fe(III) on Ferrate(VI) Decomposition in Aqueous Solutions

Yanjun Jiang et al.

ENVIRONMENTAL SCIENCE & TECHNOLOGY (2015)

Article Engineering, Environmental

Reaction of Ferrate(VI) with ABTS and Self-Decay of Ferrate(VI): Kinetics and Mechanisms

Yunho Lee et al.

ENVIRONMENTAL SCIENCE & TECHNOLOGY (2014)

Article Engineering, Environmental

Oxidation of benzothiophene, dibenzothiophene, and methyl-dibenzothiophene by ferrate(VI)

Abdullah Al-Abduly et al.

JOURNAL OF HAZARDOUS MATERIALS (2014)

Article Biochemical Research Methods

Preparation and Aromatic Hydrocarbon Removal Performance of Potassium Ferrate

Wei Guan et al.

JOURNAL OF SPECTROSCOPY (2014)

Article Engineering, Chemical

Formation and inhibition of bromate during ferrate(VI) - Ozone oxidation process

Qi Han et al.

SEPARATION AND PURIFICATION TECHNOLOGY (2013)

Article Chemistry, Multidisciplinary

Studies of the Di-iron(VI) Intermediate in Ferrate-Dependent Oxygen Evolution from Water

Rupam Sarma et al.

JOURNAL OF THE AMERICAN CHEMICAL SOCIETY (2012)

Article Engineering, Environmental

Oxidation of Trimethoprim by Ferrate(VI): Kinetics, Products, and Antibacterial Activity

George A. K. Anquandah et al.

ENVIRONMENTAL SCIENCE & TECHNOLOGY (2011)

Review Environmental Sciences

Oxidation of inorganic contaminants by ferrates (VI, V, and IV)-kinetics and mechanisms: A review

Virender K. Sharma

JOURNAL OF ENVIRONMENTAL MANAGEMENT (2011)

Review Engineering, Environmental

Methodologies for the analytical determination of ferrate(VI): A Review

Zhiyong Luo et al.

JOURNAL OF ENVIRONMENTAL SCIENCE AND HEALTH PART A-TOXIC/HAZARDOUS SUBSTANCES & ENVIRONMENTAL ENGINEERING (2011)

Article Engineering, Environmental

The aqueous degradation of bisphenol A and steroid estrogens by ferrate

C. Li et al.

WATER RESEARCH (2008)

Article Engineering, Environmental

Oxidation of sulfonamide antimicrobials by ferrate(VI) [FeVIO42-]

Virender K. Sharma et al.

ENVIRONMENTAL SCIENCE & TECHNOLOGY (2006)

Article Engineering, Environmental

Kinetics of the oxidation of phenols and phenolic endocrine disruptors during water treatment with ferrate (Fe(VI))

Y Lee et al.

ENVIRONMENTAL SCIENCE & TECHNOLOGY (2005)

Article Environmental Sciences

A study of the preparation and reactivity of potassium ferrate

C Li et al.

CHEMOSPHERE (2005)

Article Chemistry, Organic

Participation of multioxidants in the pH dependence of the reactivity of ferrate(VI)

T Kamachi et al.

JOURNAL OF ORGANIC CHEMISTRY (2005)

Article Engineering, Environmental

Spectrophotometric determination of ferrate (Fe(Vl)) in water by ABTS

Y Lee et al.

WATER RESEARCH (2005)

Article Environmental Sciences

Oxidation of bisphenol A, 17β-estradiol, and 17α-ethynyl estradiol and byproduct estrogenicity

A Alum et al.

ENVIRONMENTAL TOXICOLOGY (2004)

Review Engineering, Environmental

Ozonation of drinking water: Part I. Oxidation kinetics and product formation

U von Gunten

WATER RESEARCH (2003)

Article Engineering, Environmental

Products of aqueous chlorination of bisphenol A and their estrogenic activity

JY Hu et al.

ENVIRONMENTAL SCIENCE & TECHNOLOGY (2002)

Review Engineering, Environmental

Potassium ferrate(VI): an environmentally friendly oxidant

VK Sharma

ADVANCES IN ENVIRONMENTAL RESEARCH (2002)

Article Chemistry, Physical

Sequential one-electron reduction of Fe(V) to Fe(III) by cyanide in alkaline medium

VK Sharma et al.

JOURNAL OF PHYSICAL CHEMISTRY B (2001)

Article Chemistry, Physical

Ferrate(VI) oxidation of aqueous phenol: Kinetics and mechanism

H Huang et al.

JOURNAL OF PHYSICAL CHEMISTRY A (2001)