Publicaciones
Facile molten salt synthesis of bimetallic NiFe-Ti3C2Tx MXene nano-hybrid as an efficient oxygen evolution electrocatalyst
NPJ 2D MATERIALS AND APPLICATIONS, 10, 24, (2026) 1 cit.
DOI →Study of M-N-C@FeNPs (M: Fe, Co, Ni) bifunctional electrocatalysts as positive electrodes for rechargeable Zn-air batteries
J POWER SOURCES, 666, 239164, (2026)
DOI →3D-printed electrochemical systems: A dual approach for H2O2 production and antibiotic degradation
JOURNAL OF ENVIRONMENTAL CHEMICAL ENGINE, 13, 119447, (2025)
DOI →Facile synthesis of high-entropy lead-free relaxor ferroelectric ceramics via high-energy ball milling
MATERIALIA, 43, 102513, (2025) 2 cit.
DOI →Magnesium-templated Fe-N doped carbon materials from biomass waste as electrocatalysts for oxygen reduction reaction in alkaline media
ELECTROCHIM ACTA, 538, 146899, (2025)
DOI →Metal-Organic Frameworks (MOFs) for Adsorption and Degradation of Microplastics
MICROPLASTICS, 4, 11, (2025) 10 cit.
DOI →Nickel(II) Benzil Bis(Thiosemicarbazonato) Complexes as Electrocatalysts for Hydrogen Evolution Reaction
APPL ORGANOMET CHEM, 39, e70094, (2025) 3 cit.
DOI →Synergistic Effect of Nitrogen Doping and Textural Design on Metal-Free Carbide-Derived Carbon Electrocatalysts for the ORR
ACS APPL MATER INTER, 17, 53388, (2025) 4 cit.
DOI →3D printed monoliths: From powder to an efficient catalyst for antibiotic degradation
SCI TOTAL ENVIRON, 906, 167376, (2024) 9 cit.
DOI →Influence of surface terminal groups on the efficiency of two-electron oxygen reduction reaction catalyzed by iron single atoms on Ti3C2Tx (T = Cl, Br, NH) MXene
J Mater Chem A, 12, 25291, (2024) 12 cit.
DOI →Optimizing Electrocoagulation for Polystyrene Microplastics Removal via Magnetic Separation
ENVIRONMENTAL PROCESSES-AN INTERNATIONAL, 11, 61, (2024) 7 cit.
DOI →An overview of the catalytic activity of MN4 molecular catalysts for the heterogeneous hydrogen evolution reaction
CURR OPIN ELECTROCHEM, 42, 101387, (2023) 4 cit.
DOI →Elucidating the electronic synergetic effects in heteroatomic doped FeN4-C-N-R (R= -F, -Cl, -Br) oxygen reduction catalysts
ELECTROCHIM ACTA, 466, 143060, (2023) 7 cit.
DOI →Fe3O4-Nanoparticle-Modified Sensor for the Detection of Dopamine, Uric Acid and Ascorbic Acid
CHEMOSENSORS, 11, 79, (2023) 37 cit.
DOI →Functionalized maghemite nanoparticles for enhanced adsorption of uranium from simulated wastewater and magnetic harvesting
ENVIRON RES, 216, 114569, (2023) 37 cit.
DOI →Highly Sensitive Enzyme-free Sensor Based on a Carbon Paste Electrode Modified with Binary Zinc Oxide/Polyaniline Nanocomposites for Dopamine, Ascorbic Acid and Uric Acid Sensing
ELECTROANAL, 35, (2023) 10 cit.
DOI →Highly efficient Cu2O@CuxFeyO4 nanohybrid catalyst for the degradation of emerging pollutants
J Water Process Eng, 52, 103549, (2023) 5 cit.
DOI →Ofloxacin Degradation over Nanosized Fe3O4 Catalyst viaThermal Activation of Persulfate Ions
CATALYSTS, 13, 256, (2023) 5 cit.
DOI →Persulfate activation at cathodic FeN4 single-atom sites in a sustainable FeNC electrocatalyst for fast degradation of antibiotics in water at near-neutral pH
MATERIALS TODAY SUSTAINABILITY, 24, 100581, (2023) 6 cit.
DOI →Polymeric Composite including Magnetite Nanoparticles for Hydrogen Peroxide Detection
CHEMOSENSORS, 11, 323, (2023) 7 cit.
DOI →Direct 3D printing of zero valent iron@polylactic acid catalyst for tetracycline degradation with magnetically inducing active persulfate
SCI TOTAL ENVIRON, 806, 150917, (2022) 15 cit.
DOI →Electrofenton with Reticular Vitreous Carbon and Iron Oxide Nanoparticles for Dye Removal: A Preliminary Study
APPLIED SCIENCES-BASEL, 12, 8293, (2022) 6 cit.
DOI →Fe3O4 Templated Pyrolyzed Fe-N-C Catalysts. Understanding the role of N-Functions and Fe3C on the ORR Activity and Mechanism
CHEMELECTROCHEM, 9, e202200115, (2022) 27 cit.
DOI →Improved Suzuki-Miyaura reaction conversion efficiency using magnetic nanoparticles and inductive heating
J MATER SCI, 57, 241, (2022) 4 cit.
DOI →Proving ligand structure-reactivity correlation on multinuclear copper electrocatalysts supported on carbon black for the oxygen reduction reaction
ELECTROCHIM ACTA, 434, 141304, (2022) 10 cit.
DOI →Strategies to improve the catalytic activity and stability of bioinspired Cu molecular catalysts for the ORR
CURR OPIN ELECTROCHEM, 35, 101035, (2022) 20 cit.
DOI →Direct 3D printing of zero valent iron@polylactic acid catalyst for tetracycline degradation with magnetically inducing active persulfate.
The Science of the total environment, 150917, (2021)
DOI →Engineering Iron Oxide Nanocatalysts by a Microwave-Assisted Polyol Method for the Magnetically Induced Degradation of Organic Pollutants
Nanomaterials, 11, 1052, (2021) 29 cit.
DOI →Evidence of cathodic peroxydisulfate activation via electrochemical reduction at Fe(II) sites of magnetite-decorated porous carbon: Application to dye degradation in water
J ELECTROANAL CHEM, 902, 115807, (2021) 16 cit.
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