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Title: Hard-Magnet L1[subscript 0]-CoPt Nanoparticles Advance Fuel Cell Catalysis

Journal Article · · Joule

Research Organization:
Argonne National Lab. (ANL), Argonne, IL (United States). Advanced Photon Source (APS)
Sponsoring Organization:
DOE - BASIC ENERGY SCIENCES
OSTI ID:
1531020
Journal Information:
Joule, Vol. 3, Issue (1) ; 01, 2019
Country of Publication:
United States
Language:
ENGLISH

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Fe Stabilization by Intermetallic L1 0 -FePt and Pt Catalysis Enhancement in L1 0 -FePt/Pt Nanoparticles for Efficient Oxygen Reduction Reaction in Fuel Cells journal February 2018
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Cited By (12)

Optimizing PtFe intermetallics for oxygen reduction reaction: from DFT screening to in situ XAFS characterization journal January 2019
Chemical Synthesis of Magnetic Nanoparticles for Permanent Magnet Applications journal October 2019
Sub‐6 nm Fully Ordered L 1 0 ‐Pt–Ni–Co Nanoparticles Enhance Oxygen Reduction via Co Doping Induced Ferromagnetism Enhancement and Optimized Surface Strain journal March 2019
Synthesis of PtCoNiRu/C nanoparticles by spray drying combined with reduction sintering for methanol electro-oxidation journal January 2020
Shape Control of Monodispersed Sub‐5 nm Pd Tetrahedrons and Laciniate Pd Nanourchins by Maneuvering the Dispersed State of Additives for Boosting ORR Performance journal January 2020
Sub‐3 nm Intermetallic Ordered Pt 3 In Clusters for Oxygen Reduction Reaction journal November 2019
Highly stable Pt 3 Ni nanowires tailored with trace Au for the oxygen reduction reaction journal January 2019
Tungsten‐Doped L1 0 ‐PtCo Ultrasmall Nanoparticles as a High‐Performance Fuel Cell Cathode journal October 2019
Achievements, challenges and perspectives on cathode catalysts in proton exchange membrane fuel cells for transportation journal July 2019
Monodisperse nanoparticles for catalysis and nanomedicine journal January 2019
Tungsten‐Doped L1 0 ‐PtCo Ultrasmall Nanoparticles as a High‐Performance Fuel Cell Cathode journal September 2019
Hollow PtFe Alloy Nanoparticles Derived from Pt‐Fe 3 O 4 Dimers through a Silica‐Protection Reduction Strategy as Efficient Oxygen Reduction Electrocatalysts journal January 2020

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