摘要
Advancing electrocatalysis for sustainable energy applications requires an insightful understanding of quantum-level phenomena that govern the catalyst functionality. This perspective examines the critical roles of spin polarization, orbital symmetry and hybridization, magnetic ordering, spin–orbit coupling (SOC), and Jahn–Teller distortions in modulating the activity, selectivity, and stability of electrocatalysts. We highlight the influence of orbital filling, spin states, magnetic domains and hybridization on electrochemical reactions such as the oxygen evolution reaction (OER), oxygen reduction reaction (ORR), hydrogen evolution reaction (HER), CO2 reduction reaction (CO2RR), and ammonia synthesis by nitrogen, nitrate, or nitrite reduction reactions (NRR/NO3RR/NO2RR). Beyond classical electrocatalytic reactions, spin–orbital engineering concepts are increasingly being applied to energy storage systems such as Li–S, Li–O2, and Li–CO2 batteries. In these systems, regulation of orbital occupancy, orbital hybridization, and spin-state plays a decisive role in redox kinetics, intermediate adsorption, and discharge product morphology, providing new avenues for rational design of multifunctional catalysts for advanced energy storage. Emerging classes of quantum materials, including topological semimetals, Heusler alloys, and spintronic catalysts, are explored in the context of their spin-resolved transport, topological surface states, and magnetic field responsiveness. Through the integration of theoretical descriptors and experimental strategies, we propose a unified framework that embeds quantum mechanics with a catalyst design. This perspective underscores the need to go beyond traditional d-band models toward a quantum-informed paradigm to design next-generation catalysts driven by spin–orbital-magnetic interplay.