Cerium-Based Metal Organic Framework (Ce-MOF) as corrosion inhibitor for API 5 L X65 steel in CO2- saturated brine solution: XPS, DFT/MD-simulation, and Machine learning model prediction
暂无分享,去创建一个
[1] M. A. Hegazy,et al. Appraisal of synthetic cationic Gemini surfactants as highly efficient inhibitors for carbon steel in the acidization of oil and gas wells: an experimental and computational approach , 2022, RSC advances.
[2] A. Pandikumar,et al. Sulfur-doped graphitic carbon nitride (S-g-C3N4) as an efficient corrosion inhibitor for X65 pipeline steel in CO2- saturated 3.5% NaCl solution: Electrochemical, XPS and Nanoindentation Studies , 2022, Process Safety and Environmental Protection.
[3] Ashok Kumar,et al. Computational and Experimental studies on the corrosion inhibition performance of an aerial extract of Cnicus Benedictus weed on the acidic corrosion of mild steel , 2022, Process Safety and Environmental Protection.
[4] Han-seung Lee,et al. Cupressus arizonica fruit essential oil: A novel green inhibitor for acid corrosion of carbon steel , 2022, Arabian Journal of Chemistry.
[5] M. Askari. Development of a novel setup for in-situ electrochemical assessment of top of the line corrosion (TLC) and its smart inhibition under simulated conditions , 2022, Process Safety and Environmental Protection.
[6] B. Ramezanzadeh,et al. Recent progress on the metal-organic frameworks decorated graphene oxide (MOFs-GO) nano-building application for epoxy coating mechanical-thermal/flame-retardant and anti-corrosion features improvement , 2022, Progress in Organic Coatings.
[7] O. Onukwuli,et al. Multidimensional insight into the corrosion inhibition of salbutamol drug molecule on mild steel in oilfield acidizing fluid: Experimental and Computer aided modeling approach , 2022, Journal of Molecular Liquids.
[8] M. Hussein,et al. Evaluation of corrosion inhibition performance of thiazolidine-2,4-diones and its amino derivative: gravimetric, electrochemical, spectroscopic, and surface morphological studies , 2022, Process Safety and Environmental Protection.
[9] I. Obot,et al. Mechanistic evaluation of adsorption and corrosion inhibition capabilities of novel indoline compounds for oil well/tubing steel in 15% HCl , 2021, Chemical Engineering Journal.
[10] Renhui Zhang,et al. Corrosion inhibition of eco-friendly nitrogen-doped carbon dots for carbon steel in acidic media: Performance and mechanism investigation , 2021, Journal of Molecular Liquids.
[11] B. Ramezanzadeh,et al. Molecular-MD/atomic-DFT theoretical and experimental studies on the quince seed extract corrosion inhibition performance on the acidic-solution attack of mild-steel , 2021, Journal of Molecular Liquids.
[12] Xin Wang,et al. In-depth insight into the synergistic inhibition mechanism of S-benzyl-L-cysteine and thiourea on the corrosion of carbon steel in the CO2-saturated oilfield produced water , 2021, Corrosion Science.
[13] A. Fouda,et al. RETRACTED ARTICLE: Chemical, electrochemical and surface studies of new metal–organic frameworks (MOF) as corrosion inhibitors for carbon steel in sulfuric acid environment , 2021, Scientific Reports.
[14] T. Bharathidasan,et al. Cerium Stearate Electrodeposited Superhydrophobic Coatings for Active Corrosion Protection of Anodized AA 2024-T3 , 2021, Corrosion.
[15] S. Roy,et al. From Trash to Treasure: Probing Cycloaddition and Photocatalytic Reduction of CO2 over Cerium-Based Metal–Organic Frameworks , 2021, The Journal of Physical Chemistry C.
[16] Minghao Yang,et al. Modeling the corrosion rate of carbon steel in carbonated mixtures of MDEA-based solutions using artificial neural network , 2021 .
[17] Guopeng Zhang,et al. Dextran derivatives as highly efficient green corrosion inhibitors for carbon steel in CO2-saturated oilfield produced water: Experimental and theoretical approaches , 2021 .
[18] B. Ramezanzadeh,et al. Application of nanoporous cobalt-based ZIF-67 metal-organic framework (MOF) for construction of an epoxy-composite coating with superior anti-corrosion properties , 2021 .
[19] E. Ebenso,et al. Experimental, adsorption, quantum chemical and molecular dynamics simulation studies on the corrosion inhibition performance of Vincamine on J55 steel in acidic medium , 2020 .
[20] B. Lakhrissi,et al. Green synthesis of novel carbohydrate polymer chitosan oligosaccharide grafted on d-glucose derivative as bio-based corrosion inhibitor , 2020 .
[21] G. Krishnamurthy,et al. Electrochemical and photocatalytic applications of Ce-MOF , 2020, Bulletin of Materials Science.
[22] O. Onukwuli,et al. Electrochemical-kinetics, MD-simulation and multi-input single-output (MISO) modeling using adaptive neuro-fuzzy inference system (ANFIS) prediction for dexamethasone drug as eco-friendly corrosion inhibitor for mild steel in 2 M HCl electrolyte , 2020, Journal of the Taiwan Institute of Chemical Engineers.
[23] Meng Chen,et al. Preparation of Cu-MOFs and its corrosion inhibition effect for carbon steel in hydrochloric acid solution , 2020 .
[24] G. Mahmoud,et al. A cerium-based MOFzyme with multi-enzyme-like activity for the disruption and inhibition of fungal recolonization. , 2020, Journal of materials chemistry. B.
[25] P. Pratheesh,et al. Biomimetic potential of cerium oxide nanoparticles in modulating the metabolic gene signature in GBM-derived cell lines , 2020, Journal of Materials Science.
[26] G. Cui,et al. Chitosan derivatives as green corrosion inhibitors for P110 steel in a carbon dioxide environment. , 2020, Colloids and surfaces. B, Biointerfaces.
[27] Xiao Xiao,et al. Synthesis of “Quasi-Ce-MOF” Electrocatalysts for Enhanced Urea Oxidation Reaction Performance , 2020 .
[28] S. Kundu,et al. Polymeric Nanofibers Containing CoNi-Based Zeolitic Imidazolate Framework Nanoparticles for Electrocatalytic Water Oxidation , 2020 .
[29] Q.H. Zhang,et al. Inhibitive and adsorption behavior of thiadiazole derivatives on carbon steel corrosion in CO2-saturated oilfield produced water: Effect of substituent group on efficiency. , 2020, Journal of colloid and interface science.
[30] Lijuan Yuan,et al. Two novel chitosan derivatives as high efficient eco-friendly inhibitors for the corrosion of mild steel in acidic solution , 2020 .
[31] Oisik Das,et al. Application of Adaptive Neuro-Fuzzy Inference System in Flammability Parameter Prediction , 2020, Polymers.
[32] Wenpo Li,et al. Investigation of imidazole derivatives as corrosion inhibitors of copper in sulfuric acid: Combination of experimental and theoretical researches , 2020 .
[33] I. Obot,et al. Alternative corrosion inhibitor formulation for carbon steel in CO2-saturated brine solution under high turbulent flow condition for use in oil and gas transportation pipelines , 2019, Corrosion Science.
[34] Zongxue Yu,et al. Preparation of Ce-MOF@TEOS to enhance the anti-corrosion properties of epoxy coatings , 2019, Progress in Organic Coatings.
[35] Ruiqing Shen,et al. Synergistic effect of O2 and SO2 gas impurities on X70 steel corrosion in water-saturated supercritical CO2 , 2019, Process Safety and Environmental Protection.
[36] S. Kundu,et al. Capped and uncapped nickel tungstate (NiWO4) nanomaterials: A comparison study for anti-corrosion of copper metal in NaCl solution , 2019, Corrosion Science.
[37] J. M. Cunha,et al. Water-soluble carboxymethylchitosan as green scale inhibitor in oil wells. , 2019, Carbohydrate polymers.
[38] Mahboube Ghahramaninezhad,et al. New MOF-Based Corrosion Inhibitor for Carbon Steel in Acidic Media , 2019, Metals and Materials International.
[39] Ashish Kumar,et al. A combined electrochemical and theoretical analysis of environmentally benign polymer for corrosion protection of N80 steel in sweet corrosive environment , 2019, Results in Physics.
[40] Xingpeng Guo,et al. N, S co-doped carbon dots as effective corrosion inhibitor for carbon steel in CO2-saturated 3.5% NaCl solution , 2019, Journal of the Taiwan Institute of Chemical Engineers.
[41] O. Onukwuli,et al. Experimental, theoretical modeling and optimization of inhibition efficiency of pigeon pea leaf extract as anti-corrosion agent of mild steel in acid environment , 2019, Materials Chemistry and Physics.
[42] A. Sorour,et al. Green corrosion inhibitor for oilfield application I: Electrochemical assessment of 2-(2-pyridyl) benzimidazole for API X60 steel under sweet environment in NACE brine ID196 , 2019, Corrosion Science.
[43] E. Han,et al. Synergistic Effect of 3-Amino-1,2,4-triazole-5-thiol and Cerium Chloride on Corrosion Inhibition of AA2024-T3 , 2019, Journal of The Electrochemical Society.
[44] R. Shrivastava,et al. A new insight into corrosion inhibition mechanism of copper in aerated 3.5 wt.% NaCl solution by eco-friendly Imidazopyrimidine Dye: experimental and theoretical approach , 2019, Chemical Engineering Journal.
[45] B. Ramezanzadeh,et al. Utilizing Lemon Balm extract as an effective green corrosion inhibitor for mild steel in 1M HCl solution: A detailed experimental, molecular dynamics, Monte Carlo and quantum mechanics study , 2019, Journal of the Taiwan Institute of Chemical Engineers.
[46] N. C. Murmu,et al. Effect of stereochemical conformation into the corrosion inhibitive behaviour of double azomethine based Schiff bases on mild steel surface in 1 mol L−1 HCl medium: An experimental, density functional theory and molecular dynamics simulation study , 2019, Corrosion Science.
[47] Rosemary Norman,et al. Neural network modelling of high pressure CO2 corrosion in pipeline steels , 2018, Process Safety and Environmental Protection.
[48] Yanwei Sun,et al. Insights into the Use of Metal-Organic Framework As High-Performance Anticorrosion Coatings. , 2018, ACS applied materials & interfaces.
[49] Jingmao Zhao,et al. Synergistic inhibition effects of octadecylamine and tetradecyl trimethyl ammonium bromide on carbon steel corrosion in the H2S and CO2 brine solution , 2017 .
[50] Xingpeng Guo,et al. Inhibition Behavior of an Imidazoline Inhibitor for Carbon Steel in a Supercritical CO2/H2O System , 2017 .
[51] Yuanhua Lin,et al. Electrochemical, surface and quantum chemical studies of novel imidazole derivatives as corrosion inhibitors for J55 steel in sweet corrosive environment , 2017 .
[52] B. Hou,et al. Insights into corrosion inhibition behavior of multi-active compounds for X65 pipeline steel in acidic oilfield formation water , 2017 .
[53] R. M. Chandima Ratnayake,et al. Minimizing hydrocarbon release from offshore piping by performing probabilistic fatigue life assessment , 2017 .
[54] Peixun Xiong,et al. Hierarchical cerium oxide derived from metal-organic frameworks for high performance supercapacitor electrodes , 2016 .
[55] E. Ebenso,et al. Experimental and theoretical studies on some selected ionic liquids with different cations/anions as corrosion inhibitors for mild steel in acidic medium , 2016 .
[56] A. Fouda,et al. Metal-organic frameworks based on silver (I) and nitrogen donors as new corrosion inhibitors for copper in HCl solution , 2016 .
[57] A. Khadom,et al. Evaluation of environmentally friendly inhibitor for galvanic corrosion of steel–copper couple in petroleum waste water , 2015 .
[58] E. Ebenso,et al. Experimental, quantum chemical and Monte Carlo simulation studies on the corrosion inhibition of some alkyl imidazolium ionic liquids containing tetrafluoroborate anion on mild steel in acidic medium , 2015 .
[59] A. Afolabi,et al. Experimental, quantum chemical calculations, and molecular dynamic simulations insight into the corrosion inhibition properties of 2-(6-methylpyridin-2-yl)oxazolo[5,4-f][1,10]phenanthroline on mild steel , 2013, Research on Chemical Intermediates.
[60] Xin Li,et al. Discussion of the CO2 corrosion mechanism between low partial pressure and supercritical condition , 2012 .
[61] M. Mousavi,et al. Theoretical investigation of corrosion inhibition effect of imidazole and its derivatives on mild steel using cluster model , 2011 .
[62] A. Fouda,et al. Structure, Characterization and Anti-Corrosion Activity of the New Metal–Organic Framework [Ag(qox)(4-ab)] , 2011 .
[63] F. D. Souza,et al. Caffeic acid as a green corrosion inhibitor for mild steel , 2009 .