4.2 Article

Oxidative degradation of phenol by sulfidated zero valent iron under aerobic conditions: The effect of oxalate and tripolyphosphate ligands

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

Dechlorination of Excess Trichloroethene by Bimetallic and Sulfidated Nanoscale Zero-Valent Iron

Feng He et al.

ENVIRONMENTAL SCIENCE & TECHNOLOGY (2018)

Article Green & Sustainable Science & Technology

High performance and simultaneous sequestration of Cr(VI) and Sb(III) by sulfidated zerovalent iron

Yahao Wang et al.

JOURNAL OF CLEANER PRODUCTION (2018)

Article Engineering, Environmental

Modeling the Kinetics of Hydrogen Formation by Zerovalent Iron: Effects of Sulfidation on Micro- and Nano-Scale Particles

Hejie Qin et al.

ENVIRONMENTAL SCIENCE & TECHNOLOGY (2018)

Review Engineering, Environmental

Advances in Sulfidation of Zerovalent Iron for Water Decontamination

Jinxiang Li et al.

ENVIRONMENTAL SCIENCE & TECHNOLOGY (2017)

Review Engineering, Environmental

Sulfidation of Iron-Based Materials: A Review of Processes and Implications for Water Treatment and Remediation

Dimin Fan et al.

ENVIRONMENTAL SCIENCE & TECHNOLOGY (2017)

Article Chemistry, Physical

Optimal design and characterization of sulfide-modified nanoscale zerovalent iron for diclofenac removal

Shikun Song et al.

APPLIED CATALYSIS B-ENVIRONMENTAL (2017)

Article Engineering, Environmental

Sulfidation of Nano Zerovalent Iron (nZVI) for Improved Selectivity During In-Situ Chemical Reduction (ISCR)

Dimin Fan et al.

ENVIRONMENTAL SCIENCE & TECHNOLOGY (2016)

Article Geochemistry & Geophysics

Mechanisms of hydroxyl radical production from abiotic oxidation of pyrite under acidic conditions

Peng Zhang et al.

GEOCHIMICA ET COSMOCHIMICA ACTA (2016)

Article Engineering, Environmental

pH-dependent degradation of p-nitrophenol by sulfidated nanoscale zerovalent iron under aerobic or anoxic conditions

Jing Tang et al.

JOURNAL OF HAZARDOUS MATERIALS (2016)

Article Engineering, Environmental

Dramatically Enhanced Aerobic Atrazine Degradation with Fe@Fe2O3 Core-Shell Nanowires by Tetrapolyphosphate

Li Wang et al.

ENVIRONMENTAL SCIENCE & TECHNOLOGY (2014)

Article Engineering, Chemical

Removal of 2,4-dichlorophenol from contaminated soil by a heterogeneous ZVI/EDTA/Air Fenton-like system

Haiyan Zhou et al.

SEPARATION AND PURIFICATION TECHNOLOGY (2014)

Article Engineering, Environmental

Reactivity of Fe/FeS Nanoparticles: Electrolyte Composition Effects on Corrosion Electrochemistry

David Turcio-Ortega et al.

ENVIRONMENTAL SCIENCE & TECHNOLOGY (2012)

Article Chemistry, Inorganic & Nuclear

Generation of Ferryl Species through Dioxygen Activation in Iron/EDTA Systems: A Computational Study

Leonardo Bernasconi et al.

INORGANIC CHEMISTRY (2009)

Article Engineering, Environmental

Ligand-enhanced reactive oxidant generation by nanoparticulate zero-valent iron and oxygen

Christina R. Keenan et al.

ENVIRONMENTAL SCIENCE & TECHNOLOGY (2008)

Article Environmental Sciences

Influence of Na2S on the degradation kinetics of CCl4 in the presence of very pure iron

E. B. Hansson et al.

JOURNAL OF CONTAMINANT HYDROLOGY (2008)

Article Engineering, Environmental

Quantification of the oxidizing capacity of nanoparticulate zero-valent iron

SH Joo et al.

ENVIRONMENTAL SCIENCE & TECHNOLOGY (2005)

Article Engineering, Environmental

Abiotic reductive dechlorination of chlorinated ethylenes by iron-bearing soil minerals. 1. Pyrite and magnetite

W Lee et al.

ENVIRONMENTAL SCIENCE & TECHNOLOGY (2002)

Article Biochemistry & Molecular Biology

Iron autoxidation and free radical generation: Effects of buffers, ligands, and chelators

KD Welch et al.

ARCHIVES OF BIOCHEMISTRY AND BIOPHYSICS (2002)

Article Engineering, Environmental

Factors influencing rates and products in the transformation of trichloroethylene by iron sulfide and iron metal

EC Butler et al.

ENVIRONMENTAL SCIENCE & TECHNOLOGY (2001)