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Pine Research Instrumentation Inc catalyst-coated glassy carbon electrode gce
Catalyst Coated Glassy Carbon Electrode Gce, supplied by Pine Research Instrumentation Inc, used in various techniques. Bioz Stars score: 90/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
https://www.bioz.com/product/glassy+carbon+electrode+gce/glassy+carbon/pm40358943-50-5-26
Average 90 stars, based on 1 article reviews
catalyst-coated glassy carbon electrode gce - by Bioz Stars, 2026-09
90/100 stars

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Article Title: From scheelite BaMoO4 to perovskite BaMoO3: Enhanced electrocatalysis toward the hydrogen evolution in alkaline media
Article Snippet: This is a PDF file of an article that has undergone enhancements after acceptance, such as the addition of a cover page and metadata, and formatting for readability, but it is not yet the definitive version of record.. This version will undergo additional copyediting, typesetting and review before it is published in its final form, but we are providing this version to give early visibility of the article.. Please note that, during the production process, errors may be discovered which could affect the content, and all legal disclaimers that apply to the journal pertain.

Article Title: Enhancing the Activity and Stability of Pt Nanoparticles Supported on Multiscale Porous Antimony Tin Oxide for Oxygen Reduction Reaction.
Article Snippet: Hao Li, Muhammad Ajmal, Xinquan Wu, Shishi Zhang, Xiaokang Liu, Zhen-Feng Huang , Ruijie Gao, Lun Pan, Xiangwen Zhang, Ji-Jun Zou Pt nanoparticles dispersed on carbon supports (Pt/C) are the benchmark oxygen reduction reaction (ORR) catalysts in proton exchange membrane fuel cells (PEMFCs).. However, their widespread application is hindered by severe stability degradation under high potentials and acidic environments, primarily due to carbon support corrosion.. To address this challenge, a multiscale template-assisted method is proposed, combined with ethylene glycol reduction, to fabricate Pt nanoparticles supported onto multiscale porous conductive antimony tin oxides (Pt/PT-SSO).

Article Title: Low-temperature wafer-scale growth of MoS2-graphene heterostructures
Article Snippet: Accepted Manuscript Full Length Article Low-Temperature Wafer-Scale Growth of MoS2-Graphene Heterostructures Hyeong-U Kim, Mansu Kim, Yinhua Jin, Yuhwan Hyeon, Ki Seok Kim, Byeong-Seon An, Cheol-Woong Yang, Vinit Kanade, Ji-Yun Moon, Geun Yong Yeom, Dongmok Whang, Jae-Hyun Lee, Taesung Kim PII: S0169-4332(18)33204-5 DOI: https://doi.org/10.1016/j.apsusc.2018.11.126 Reference: APSUSC 40972 To appear in: Applied Surface Science Received Date: 5 July 2018 Revised Date: 12 November 2018 Accepted Date: 15 November 2018 Please cite this article as: H-U.. Kim, M. Kim, Y. Jin, Y. Hyeon, K. Seok Kim, B-S. An, C-W. Yang, V. Kanade, JY.. Moon, G. Yong Yeom, D. Whang, J-H. Lee, T. Kim, Low-Temperature Wafer-Scale Growth of MoS2-Graphene Heterostructures, Applied Surface Science (2018), doi: https://doi.org/10.1016/j.apsusc.2018.11.126 This is a PDF file of an unedited manuscript that has been accepted for publication.


Article Title: Mesoporous NiO with different morphology: Synthesis, characterization and their evaluation for oxygen evolution reaction
Article Snippet: Mesoporous NiO samples with different morphology were synthesized by hydrothermal method, and they were studied as electrocatalysts for oxygen evolution reaction in alkaline solution.. The NiO samples were characterized by X-ray diffraction, transmission electron microscopy, N2-adsorption, scanning electron microscopy and X-ray photoelectron spectroscopy.. The critical synthesis parameters like hydrothermal reaction temperature, time and molar ratio of precursors were varied using Taguchi experimental method to investigate their effect on morphology and specific surface area of mesoporous NiO samples.

Article Title: Electrospun Fe 2 C-loaded carbon nanofibers as efficient electrocatalysts for oxygen reduction reaction.
Article Snippet: Carbon-based non-precious metal catalysts have been regarded as the most promising alternatives to the state-of-art Pt/C catalyst for the oxygen reduction reaction (ORR).. However, there are still some unresolved challenges such as agglomeration of nanoparticles, complex preparation process and low production efficiency, which severely hamper the large-scale production of non-precious metal catalysts.. Herein, a novel carbon-based non-precious metal catalyst, i.e. iron carbide nanoparticles embedded on carbon nanofibers (Fe2C/CNFs), prepared via the direct pyrolysis of carbonand iron-containing Janus fibrous precursors obtained by electrospinning.

Article Title: Vacancy-Activated Surface Reconstruction of Perovskite Nanofibers for Efficient Lattice Oxygen Evolution.
Article Snippet: Inducing the surface reconstruction of perovskites to promote the oxygen evolution reaction (OER) has garnered increasing attention due to the enhanced catalytic activities caused by the self-reconstructed electroactive species.. However, the high reconstruction potential, limited electrolyte penetration, and accessibility to the perovskite surface greatly hindered the formation of self-reconstructed electroactive species.. Herein, trace Ce-doped La0.95Ce0.05Ni0.8Fe0.2O3−δ nanofibers (LCNF-NFs) were synthesized via electrospinning and postcalcination to boost surface reconstruction.



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