Escaping the Scaling Relationships in Oxygen Reduction Catalysis: Implications for PEM Fuel Cells
Muhammad Bilal Wazir, Lourdes F. Vega, Maryam KhaleelABSTRACT
The growing interest in the hydrogen economy has sparked renewed interest in proton exchange membrane fuel cells (PEMFCs); however, the high cost and limited supply of noble metals like platinum remain a major obstacle to their widespread use. A primary bottleneck is the electrochemical oxygen reduction reaction (ORR) owing to its complex, multi‐intermediate pathway constrained by fundamental scaling relationships that limit the performance of even the most effective catalysts. Herein, we argue that interfacial heterogeneity, integrating symmetry‐breaking perturbations that span the subsurface lattice, the chemisorption layer, and the near‐interface solvation volume, provides the mechanistic basis for decoupling the adsorption energetics of ORR intermediates and overcoming these linear scaling relationships. This outlook critically examines recent strategies pursued to this end, including strain engineering, atomically dispersed sites, doping, interfacial field effects, and confinement, that modulate intermediate energetics to varying degrees, yet full thermodynamic decoupling remains elusive in practice. We, therefore, contend that the most promising path forward lies in engineering the interface holistically, integrating the lattice, chemisorption, and solvation contributions rather than tuning any one in isolation, while co‐optimizing for durability and transport dynamics in order to translate these mechanistic insights into practical PEMFCs.