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2D metal phosphide loop-sheet heterostructures are controllably synthesized by edge-topological regulation, where Ni P nanosheets are edge-confined by the N-doped carbon loop, containing ultrafine NiFeP nanocrystals (denoted as NiFeP@NC/Ni P). This loop-sheet feature with lifted-edges prevents the stacking of nanosheets and induces accessible open channels for catalytic site exposure and gas bubble release. Importantly, these NiFeP@NC/Ni P hybrids exhibit a remarkable oxygen evolution activity with an overpotential of 223 mV at 20 mA cm and a Tafel slope of 46.1 mV dec , constituting the record-high performance among reported metal phosphide electrocatalysts. The NiFeP@NC/Ni P hybrids are also employed as both anode and cathode to achieve an alkaline electrolyzer for overall water splitting, delivering a current density of 10 mA cm with a voltage of 1.57 V, comparable to that of the commercial Pt/C||RuO couple (1.56 V). Moreover, a photovoltaic-electrolysis coupling system can as well be effectively established for robust overall water splitting. Evidently, this ingenious protocol would expand the toolbox for designing efficient 2D nanomaterials for practical applications.
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http://dx.doi.org/10.1002/smll.202006860 | DOI Listing |
Nanotechnology
September 2025
Anhui University, No. 111 Jiulong Road, Economic and Technological Development Zone, Hefei City, Anhui Province, China, Hefei, Anhui, 230601, CHINA.
Ni-Fe Prussian blue analogue (PBA) nanorods were successfully synthesized using an innovative one-dimensional molybdate template method, followed by the preparation of Ni-Fe-P nanorods through a phosphating process. These nanorods are meticulously constructed from two metal phosphides, Ni 5 P 4 and FeP. As an anode material for sodium-ion batteries (SIBs), the self-sacrificial template synthesis of Ni-Fe-P nanorods demonstrates remarkable electrochemical performance, achieving a reversible specific capacity of up to 678.
View Article and Find Full Text PDFChemphyschem
September 2025
Hunan Provincial Key Laboratory of Xiangnan Rare-Precious Metals Compounds and Applications, College of Chemistry and Environmental Science, Xiangnan University, Chenzhou, 423000, China.
With the rapid development of portable electronic devices and electric vehicles, metal-ion batteries, especially lithium/sodium/potassium-ion batteries (LIBs/SIBs/PIBs), have become a research hotspot because of their high energy density and cycle stability. The battery system primarily comprises three key components: negative electrode material, positive electrode material, electrolyte, and diaphragm. The selection of the negative electrode material will directly impact the battery's energy density.
View Article and Find Full Text PDFInt J Mol Sci
August 2025
KENTECH Institute for Hydrogen Energy, Korea Institute of Energy Technology (KENTECH), 21 KENTECH-gil, Naju 58330, Jeollanam-do, Republic of Korea.
Developing efficient and sustainable hydrogen production technologies is critical for advancing the global clean energy transition. This review highlights recent progress in the design, synthesis, and electrocatalytic applications of MXene-based materials for electrochemical water splitting. It discusses the fundamental mechanisms of the hydrogen evolution reaction (HER) and oxygen evolution reaction (OER), and the structure-function relationships that govern electrocatalytic behavior.
View Article and Find Full Text PDFACS Nano
September 2025
Catalonia Institute for Energy Research (IREC), Sant Adrià de Besòs, Barcelona 08930, Spain.
Engineering lattice strain, electronic structure, and crystallinity in palladium alloys offers a promising approach to significantly enhance their electrocatalytic performance. In this work, we present a versatile strategy to synthesize Pd-based phosphide alloys integrated with non-noble metal atoms (Pd-M-P; M = Co, Ni, Cu), characterized by expanded lattice structures and a crystalline-amorphous core-shell architecture. Catalytic performance assessments revealed that CuPdP exhibits an impressive mass activity of 7.
View Article and Find Full Text PDFACS Meas Sci Au
August 2025
Department of Chemistry, University of Iowa, Iowa City, Iowa 52242, United States.
Tafel analysis is widely used to characterize electrode kinetics. The technique has found use in electrochemistry, catalysis, materials, and corrosion research. Accurate Tafel analysis is especially critical in comparison of electrocatalysts.
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