skip to main content
OSTI.GOV title logo U.S. Department of Energy
Office of Scientific and Technical Information

Title: Advanced Pt-Based Core–Shell Electrocatalysts for Fuel Cell Cathodes

Journal Article · · Accounts of Chemical Research

Proton-exchange membrane fuel cells (PEMFCs) are highly efficient energy storage and conversion devices. Thus, the platinum group metal (PGM)-based catalysts which are the dominant choice for the PEMFCs have received extensive interest during the past couple of decades. However, the drawbacks in the existing PGM-based catalysts (i.e., high cost, slow kinetics, poor stability, etc.) still limit their applications in fuel cells. The Pt-based core–shell catalysts potentially alleviate these issues through the low Pt loading with the associated low cost and the high corrosion resistance and further improve the oxygen reduction reaction’s (ORR’s) activity and stability. This Account focuses on the synthetic strategies, catalytic mechanisms, factors influencing enhanced ORR performance, and applications in PEMFCs for the Pt-based core–shell catalysts. We first highlight the synthetic strategies for Pt-based core–shell catalysts including the galvanic displacement of an underpotentially deposited non-noble metal monolayer, thermal annealing, and dealloying methods, which can be scaled-up to meet the requirements of fuel cell operations. Subsequently, catalytic mechanisms such as the self-healing mechanism in the Pt monolayer on Pd core catalysts, the pinning effect of nitrogen (N) dopants in N-doped PtNi core–shell catalysts, and the ligand effect of the ordered intermetallic structure in L10-Pt/CoPt core–shell catalysts and their synergistic effects in N-doped L10-PtNi catalysts are described in detail. Additionally, the core–shell structure in the Pt-based catalysts have two main effects for enhanced ORR performance: (i) the interaction between Pt shells and core substrates can tune the electronic state of the surface Pt, thus boosting the ORR activity and stability, and (ii) the outer Pt shell with modest thickness can enhance the oxidation and dissolution resistance of the core, resulting in improved durability. We then review the recent attempts to optimize the ORR performance of the Pt-based core–shell catalysts by considering the shape, composition, surface orientation, and shell thickness. The factors influencing the ORR performance can be grouped into two categories: the effect of the core and the effect of the shell. In the former, PtM core–shell catalysts which use different non-PGM element cores (M) are summarized, and in the latter, Pt-based core–shell catalysts with different shell structures and compositions are described. The modifications of the core and/or shell structure can not only optimize the intermediate-binding energetics on the Pt surface through tuning the strain of the surface Pt, which increases the intrinsic activity and stability, but also offer a significantly decreased catalyst cost. Finally, we discuss the membrane electrode assembly performance of Pt-based core–shell catalysts in fuel cell cathodes and evaluate their potential in real PEMFCs for light-duty and heavy-duty vehicle applications. Even though some challenges to the activity and lifetime in the fuel cells remain, the Pt-based core–shell catalysts are expected to be promising for many practical PEMFC applications.

Research Organization:
Brookhaven National Lab. (BNL), Upton, NY (United States)
Sponsoring Organization:
USDOE Office of Energy Efficiency and Renewable Energy (EERE), Transportation Office. Fuel Cell Technologies Office
Grant/Contract Number:
SC0012704
OSTI ID:
1873649
Report Number(s):
BNL-223086-2022-JAAM
Journal Information:
Accounts of Chemical Research, Vol. 55, Issue 9; ISSN 0001-4842
Publisher:
American Chemical Society (ACS)Copyright Statement
Country of Publication:
United States
Language:
English

References (60)

Tungsten‐Doped L1 0 ‐PtCo Ultrasmall Nanoparticles as a High‐Performance Fuel Cell Cathode journal October 2019
Core-Protected Platinum Monolayer Shell High-Stability Electrocatalysts for Fuel-Cell Cathodes journal October 2010
Low-Coordination Sites in Oxygen-Reduction Electrocatalysis: Their Roles and Methods for Removal journal July 2011
Favorable Core/Shell Interface within Co 2 P/Pt Nanorods for Oxygen Reduction Electrocatalysis journal November 2018
Probing structure-designed Cu–Pd nanospheres and their Pt-monolayer-shell derivatives as high-performance electrocatalysts for alkaline and acidic oxygen reduction reactions journal January 2020
Shell-thickness-dependent Pd@PtNi core–shell nanosheets for efficient oxygen reduction reaction journal January 2022
Recent advances in platinum monolayer electrocatalysts for oxygen reduction reaction: Scale-up synthesis, structure and activity of Pt shells on Pd cores journal March 2010
Improving Electrocatalysts for O 2 Reduction by Fine-Tuning the Pt−Support Interaction: Pt Monolayer on the Surfaces of a Pd 3 Fe(111) Single-Crystal Alloy journal September 2009
Tuning Surface Structure and Strain in Pd-Pt Core-Shell Nanocrystals for Enhanced Electrocatalytic Oxygen Reduction journal November 2016
Achieving High-Power PEM Fuel Cell Performance with an Ultralow-Pt-Content Core–Shell Catalyst journal February 2016
High-Loading Intermetallic Pt 3 Co/C Core–Shell Nanoparticles as Enhanced Activity Electrocatalysts toward the Oxygen Reduction Reaction (ORR) journal February 2018
Rhombohedral Ordered Intermetallic Nanocatalyst Boosts the Oxygen Reduction Reaction journal December 2020
Mixed-Metal Pt Monolayer Electrocatalysts for Enhanced Oxygen Reduction Kinetics journal September 2005
Carbon-Supported IrNi Core–Shell Nanoparticles: Synthesis, Characterization, and Catalytic Activity journal May 2011
New roads and challenges for fuel cells in heavy-duty transportation journal March 2021
Designing high performance Pt monolayer core–shell electrocatalysts for fuel cells journal June 2020
Controlling Near-Surface Ni Composition in Octahedral PtNi(Mo) Nanoparticles by Mo Doping for a Highly Active Oxygen Reduction Reaction Catalyst journal September 2019
Eliminating dissolution of platinum-based electrocatalysts at the atomic scale journal July 2020
General Trends in Core–Shell Preferences for Bimetallic Nanoparticles journal April 2021
Designing the next generation of proton-exchange membrane fuel cells journal July 2021
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
Electrocatalyst approaches and challenges for automotive fuel cells journal June 2012
Ga–Doped Pt–Ni Octahedral Nanoparticles as a Highly Active and Durable Electrocatalyst for Oxygen Reduction Reaction journal March 2018
Monodisperse Pt3Co nanoparticles as electrocatalyst: the effects of particle size and pretreatment on electrocatalytic reduction of oxygen journal January 2010
Gram-Scale-Synthesized Pd 2 Co-Supported Pt Monolayer Electrocatalysts for Oxygen Reduction Reaction journal April 2010
Hard-Magnet L10-CoPt Nanoparticles Advance Fuel Cell Catalysis journal January 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
Structure-Induced Enhancement in Electrooxidation of Trimetallic FePtAu Nanoparticles journal March 2012
Atomic Layer-by-Layer Deposition of Pt on Pd Nanocubes for Catalysts with Enhanced Activity and Durability toward Oxygen Reduction journal May 2014
Design of Highly Durable Core−Shell Catalysts by Controlling Shell Distribution Guided by In‐Situ Corrosion Study journal August 2021
Controlling the Catalytic Activity of Platinum-Monolayer Electrocatalysts for Oxygen Reduction with Different Substrates journal March 2005
Enhancement of the oxygen reduction on nitride stabilized pt-M (M=Fe, Co, and Ni) core–shell nanoparticle electrocatalysts journal April 2015
Adsorbate-Induced Surface Segregation for Core-Shell Nanocatalysts journal April 2009
Current challenges related to the deployment of shape-controlled Pt alloy oxygen reduction reaction nanocatalysts into low Pt-loaded cathode layers of proton exchange membrane fuel cells journal December 2019
Intermetallic Nanoparticles: Synthetic Control and Their Enhanced Electrocatalysis journal March 2019
Impact of Transition Metal Carbide and Nitride Supports on the Electronic Structure of Thin Platinum Overlayers journal June 2019
High-Performance Nitrogen-Doped Intermetallic PtNi Catalyst for the Oxygen Reduction Reaction journal August 2020
Enhancing Oxygen Reduction Performance of Pt Monolayer Catalysts by Pd(111) Nanosheets on WNi Substrates journal March 2020
Biaxially strained PtPb/Pt core/shell nanoplate boosts oxygen reduction catalysis journal December 2016
Morphing Mncore@Ptshell nanoparticles: Effects of core structure on the ORR performance of Pt shell journal June 2020
Highly stable Pt monolayer on PdAu nanoparticle electrocatalysts for the oxygen reduction reaction journal January 2012
Current Status and Future Development of Catalyst Materials and Catalyst Layers for Proton Exchange Membrane Fuel Cells: An Industrial Perspective journal February 2017
Platinum-Based Electrocatalysts with Core-Shell Nanostructures journal February 2011
Nitride Stabilized PtNi Core–Shell Nanocatalyst for high Oxygen Reduction Activity journal February 2012
Engineering stable electrocatalysts by synergistic stabilization between carbide cores and Pt shells journal December 2019
Stabilization of Platinum Oxygen-Reduction Electrocatalysts Using Gold Clusters journal January 2007
Tetrahedral Palladium Nanocrystals: A New Support for Platinum Monolayer Electrocatalysts with High Activity and Stability in the Oxygen Reduction Reaction journal September 2012
Dealloyed binary PtM3 (M=Cu, Co, Ni) and ternary PtNi3M (M=Cu, Co, Fe, Cr) electrocatalysts for the oxygen reduction reaction: Performance in polymer electrolyte membrane fuel cells journal January 2011
Unusual strain effect of a Pt-based L1 0 face-centered tetragonal core in core/shell nanoparticles for the oxygen reduction reaction journal January 2019
Tuning the Catalytic Activity of Ru@Pt Core–Shell Nanoparticles for the Oxygen Reduction Reaction by Varying the Shell Thickness journal January 2013
Core–Shell Compositional Fine Structures of Dealloyed Pt x Ni 1– x Nanoparticles and Their Impact on Oxygen Reduction Catalysis journal September 2012
Core-Shell Nanoparticles Driven by Surface Energy Differences in the Co-Ag, W-Fe, and Mo-Co Systems journal April 2015
Pt Monolayer on Porous Pd−Cu Alloys as Oxygen Reduction Electrocatalysts journal July 2010
Enhanced Electrocatalytic Performance of Processed, Ultrathin, Supported Pd–Pt Core–Shell Nanowire Catalysts for the Oxygen Reduction Reaction journal June 2011
Synthesis and catalytic activity of Pt monolayer on Pd tetrahedral nanocrystals with CO-adsorption-induced removal of surfactants journal November 2011
Highly Dispersed Carbon Supported PdNiMo Core with Pt Monolayer Shell Electrocatalysts for Oxygen Reduction Reaction journal January 2018
High Pressure Nitrogen-Infused Ultrastable Fuel Cell Catalyst for Oxygen Reduction Reaction journal April 2021
Intermetallic FePt@PtBi Core–Shell Nanoparticles for Oxygen Reduction Electrocatalysis journal August 2021
Atomically dispersed Fe–N–C decorated with Pt-alloy core–shell nanoparticles for improved activity and durability towards oxygen reduction journal January 2020
Rh-Doped Pt–Ni Octahedral Nanoparticles: Understanding the Correlation between Elemental Distribution, Oxygen Reduction Reaction, and Shape Stability journal February 2016

Similar Records

Electrodeposition of Metals in Catalyst Synthesis: The Case of Platinum Monolayer Electrocatalysts
Journal Article · Fri Jul 01 00:00:00 EDT 2011 · The Electrochemical Society, Interface · OSTI ID:1873649

PGM-Free Oxygen-Reduction Catalyst Development for Proton-Exchange Membrane Fuel Cells: Challenges, Solutions, and Promises
Journal Article · Thu Jan 20 00:00:00 EST 2022 · Accounts of Materials Research · OSTI ID:1873649

Structural Characterization of Bimetallic Nanocrystal Electrocatalysts
Conference · Fri Jan 01 00:00:00 EST 2016 · OSTI ID:1873649