The high overpotential of the oxygen evolution reaction is a critical issue to be overcome to realize efficient overall water splitting and enable hydrogen generation powered by sunlight. Homogeneous and stable nanoparticles (NPs) dispersed in solvents are useful as both electrocatalysts and cocatalysts of photocatalysts for the electro- and photo-catalytic oxygen evolution reaction, respectively, through their adsorption on various electrode substrates. Here, phase-segregated NiP @FeP O core@shell NPs are selectively synthesized by the reaction of Fe(CO) with amorphous NiP seed-NPs. The NiP @FeP O NPs on conductive substrates exhibit higher electrocatalytic activity in the oxygen evolution reaction than those of other metal phosphide-based catalysts. The NiP @FeP O NPs can also be used as a cocatalyst of an anodic BiVO photocatalyst to boost the photocatalytic water oxidation reaction. The excellent catalytic activity and high stability of the NiP @FeP O NPs without any post-treatments are derived from activation through both the structural transformation of NiP @FeP O into mixed hydroxide species, (Ni, Fe)O H , and the spontaneous removal of the insulating organic ligands from NPs to form a smooth and robust (Ni, Fe)O H /substrate heterointerface during the oxygen evolution reaction.
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http://dx.doi.org/10.1039/c8sc00420j | DOI Listing |
ACS Mater Au
September 2024
Catalysis and Inorganic Chemistry Division, CSIR-National Chemical Laboratory, Dr. Homi Bhabha Road, Pune 411 008, India.
In the landscape of green hydrogen production, alkaline water electrolysis is a well-established, yet not-so-cost-effective, technique due to the high overpotential requirement for the oxygen evolution reaction (OER). A low-voltage approach is proposed to overcome not only the OER challenge by favorably oxidizing abundant feedstock molecules with an earth-abundant catalyst but also to reduce the energy input required for hydrogen production. This alternative process not only generates carbon-negative green H but also yields concurrent value-added products (VAPs), thereby maximizing economic advantages and transforming waste into valuable resources.
View Article and Find Full Text PDFRSC Adv
May 2024
Instituto de Ciencias, Universidad Nacional de General Sarmiento-CONICET Juan María Gutiérrez 1150 (CP1613) Los Polvorines Argentina
Porphyrin and porphyrinoid derivatives have been extensively studied in the assembly of catalysts and sensors, seeking biomimetic and bioinspired activity. In particular, Fe and Ni porphyrins can be used for the hydrogen evolution reaction (HER) and oxygen evolution reaction (OER) by immobilization of these molecular catalysts on semiconductor materials. In this study, we designed a hybrid material containing a crystalline mesoporous TiO thin film in which the catalytic centres are Ni-porphyrin (NiP), Fe-porphyrin (FeP), and a NiP/FeP bimetallic system to assess whether the coexistence of both metalloporphyrins improves the OER activity.
View Article and Find Full Text PDFDiscov Nano
December 2023
National Institute for Materials Advancement, Pittsburg State University, Pittsburg, KS, 66762, USA.
Tuning the electronic properties of transition metals using pyrophosphate (PO) ligand moieties can be a promising approach to improving the electrochemical performance of water electrolyzers and supercapacitors, although such a material's configuration is rarely exposed. Herein, we grow NiPO, CoPO, and FePO nanoparticles on conductive Ni-foam using a hydrothermal procedure. The results indicated that, among all the prepared samples, FePO exhibited outstanding oxygen evolution reaction and hydrogen evolution reaction with the least overpotential of 220 and 241 mV to draw a current density of 10 mA/cm.
View Article and Find Full Text PDFRSC Adv
September 2022
College of Materials Innovation and Technology, King Mongkut's Institute of Technology Bangkok 10520 Thailand +66-2-329-8625 +66-2-329-8300 ext. 3132.
Palm oil conversion into green diesel by catalytic deoxygenation (DO) is one of the distinctive research topics in biorefinery towards a bio-circular-green economic model to reduce the greenhouse gas emissions. In this study, palm fiber waste was explored as an alternative precursor for the preparation of activated biochar as a support material. A new series of nickel phosphide (Ni-P) and iron phosphide (Fe-P) catalysts supported on palm fiber activated biochar (PFAC) was synthesized by wetness impregnation, and extensive characterization was performed by several techniques to understand the characteristics of the supported metal phosphide catalysts prior to palm oil deoxygenation for producing of green diesel (C-C hydrocarbons).
View Article and Find Full Text PDFSci Rep
November 2021
Department of Materials Science and Engineering, Gachon University, Seongnam, Gyeonggi-do, 461-701, Republic of Korea.
A free-standing catalyst electrode for the urea oxidation reaction (UOR) and hydrogen evolution reaction (HER) in a urea electrolysis cell was synthesized by electroplating a Ni-Fe alloy onto carbon felt, followed by phosphidation (P-NiFe@CF). The prepared P-NiFe@CF catalyst consisted of NiP, NiP, and FeP with 3D flower-like P-NiFe architecture on CF. P-NiFe@CF exhibited excellent electrocatalytic activity for the UOR (demanding only 1.
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