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Water electrolysis is a promising path to the industrialization development of hydrogen energy. The exploitation of high-efficiency and inexpensive catalysts become important to the mass use of water decomposition. Ni-based nanomaterials have exhibited great potential for the catalysis of water splitting, which have attracted the attention of researchers around the world. Here, we prepared a novel Mo-doped NiFe-based layered double hydroxide (LDH) with a nanoarray microstructure on Ni foam. The doping amount of Mo can significantly change the microstructure of the electrocatalysis, which will further affect the oxygen evolution reaction (OER) performance of water splitting. This novel nanomaterial required only an overpotential of 227 mV for 10 mA cm and a Tafel slope of 54.8 mV/dec in 1 M KOH. Meanwhile, there was no Mo, and the NiFe-LDH needed 233 mV to attain to 10 mA cm. Compared to the NiFe-LDH without Mo, the NiFeMo-LDH nanosheet arrays exhibited enhanced activities with 17.1 mV/dec less Tafel in OER. The good performance of the electrocatalyst is ascribed to the special nanosheet arrays and the heterostructure of the Ni-Fe-Mo system. These features help to increase the active surface, enhancing the efficient charge transfer and the reactive activity in OER.
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http://dx.doi.org/10.3390/molecules30010177 | DOI Listing |
Adv Sci (Weinh)
September 2025
Guangxi Key Laboratory of Clean Pulp & Papermaking and Pollution Control, School of Light Industry and Food Engineering, Guangxi University, Nanning, 530004, China.
Carbonized wood has great potential as a self-supported electrode for energy storage/conversion applications. However, developing efficient and economical bifunctional electrodes by customizing the surface structure remains a challenge. This study proposes a novel multifunctional electrode design strategy, using N/P co-doped carbonized wood (NPCW) as carriers and in situ grows copper nanoparticles (Cu NPs) as nucleation centers to induce vertical growth of CuCo-layered double hydroxid (LDH) nanosheets along the substrate.
View Article and Find Full Text PDFSci Adv
September 2025
Australian Research Council Centre of Excellence for Transformative Meta-Optical Systems, Department of Electronic Materials Engineering, Research School of Physics, The Australian National University, Canberra, ACT 2600, Australia.
Surface-emitting lasers featuring optical bound states in the continuum (BICs) have recently emerged as a promising alternative to vertical cavity surface-emitting lasers. However, structural damage caused by top-down fabrication processes remains as a major obstacle that limits device performance. Here, we overcome this bottleneck by demonstrating surface-emitting quasi-BIC lasers fabricated with a bottom-up, etching-free process.
View Article and Find Full Text PDFACS Appl Mater Interfaces
September 2025
State Key Laboratory of Chemical Resource Engineering, College of Chemistry, Beijing University of Chemical Technology, Beijing 100029, China.
A series of Pd nanocluster (PdNC) catalysts -PdNCs/CuCoAl(O)/rGO- (: Pd loading (= 0.04-0.24 wt %), = 260-340 °C) are synthesized by loading water-soluble captopril-protected PdNCs on CuCoAl-layered-double-hydroxide/reduced-graphene-oxide using electrostatic adsorption followed by proper calcinations.
View Article and Find Full Text PDFJ Colloid Interface Sci
August 2025
School of Chemistry and Physics, Queensland University of Technology, Brisbane, QLD 4000, Australia. Electronic address:
Water electrolysis comprises two half-reactions-the hydrogen evolution reaction (HER) and oxygen evolution reaction (OER)-each involving multiple elementary steps. The development of bifunctional electrocatalysts that are simultaneously efficient for both HER and OER remains a significant challenge, as different steps often require distinct catalytic properties. Pentlandite-type materials ((Fe,Ni)S) have emerged as promising candidates for water splitting due to their intrinsic bifunctional activity.
View Article and Find Full Text PDFChem Commun (Camb)
August 2025
Ganzhou Center for Disease Control and Prevention, Ganzhou 341000, P. R. China.
Developing high-performance electrocatalysts requires simultaneous optimization of thermodynamics and kinetics compositional and morphological engineering. Herein, we constructed a heterogeneous composition of a nanosheet array of ReS and NiS aligned on a carbon cloth substrate, which demonstrated excellent performance for hydrogen evolution in 1.0 M KOH solution.
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