2025/09/26 by Katherine Jejen, Gonzalo Escobar, Zeyu Wang +8 · 1 voice
Chemical Engineering · Engineering · Materials Science · #Catalysis and Oxidation Reactions #Catalytic Processes in Materials Science #Perovskite Materials and Applications
paper · doi:10.26434/chemrxiv-2025-lbz9t
openalex publication_date 2025/09/26 · openalex created_date 2025/10/10 · openalex updated_date 2026/07/14
High-entropy alloying has been demonstrated as a powerful approach to obtain new materials, sometimes with exceptional structural and functional properties. The presence of several atomic species in the same crystallographic site alters short-range order compared to non-alloyed phases, and results in different mechanical, chemical, and electronic behavior with emergent features. While the synthesis of high-entropy alloys (HEAs) is established in metallurgy, their formation as halide perovskites has been so far limited by synthetic bottlenecks, including different solubilities of the binary salt precursors and the complexity of crystallization pathways in solution. Herein, we report a solvent-free mechanochemical synthesis route for high-entropy double perovskites, yielding simultaneous near-stoichiometric alloying at two and three of the crystal sublattices. Detailed structural characterization reveals the atomic mechanisms involved in the formation of the HEAs through asymmetric ion-exchange rates from parent non-alloyed perovskites, as well as the formation of inorganic layered nano-heterostructures. Strong non-linear behavior is observed in the optical properties (bandgap bowing), leading to full visible-range light absorption for the chloride perovskites. Theoretical calculations at the density functional theory provides a framework for the process, shedding light into the electronic structure of the complex alloys. As a proof of concept, the alloys are implemented in a standard electrochemical cell fitted with a quartz window for photoelectrochemical oxygen evolution testing, showing a clear photocatalytic response.