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Surface restructuring of zeolite-encapsulated halide perovskite to activate lattice oxygen oxidation for water electrolysis

dc.contributor.authorRen, XGen_AU
dc.contributor.authorZhai, YYen_AU
dc.contributor.authorWang, PJen_AU
dc.contributor.authorXu, Zen_AU
dc.contributor.authorGao, SQen_AU
dc.contributor.authorChen, Xen_AU
dc.contributor.authorGu, QFen_AU
dc.contributor.authorWang, BLen_AU
dc.contributor.authorLi, JYen_AU
dc.contributor.authorLiu, SZen_AU
dc.date.accessioned2025-07-10T01:49:10Zen_AU
dc.date.available2025-07-10T01:49:10Zen_AU
dc.date.issued2023-05-26en_AU
dc.date.statistics2025-07-10en_AU
dc.description.abstractMetal‐halide perovskites possess great potential for electrochemical water splitting that has not been realized due to their intolerance to water. Here, methylammonium lead halide perovskites (MAPbX3) are used to electrocatalyze water oxidation in aqueous electrolytes by creating MAPbX3@AlPO‐5 host–guest composites. Due to the protective feature of the zeolite matrix, halide perovskite nanocrystals (NCs) confined in aluminophosphate AlPO‐5 zeolites achieve an excellent stability in water. The resultant electrocatalyst undergoes dynamic surface restructuring during the oxygen evolution reaction (OER) with the formation of an edge‐sharing α‐PbO2 active layer. The existence of charge‐transfer interactions at the MAPbX3/α‐PbO2 interface significantly modulates the surface electron density of the α‐PbO2 and optimizes the adsorption free energy of oxygen‐containing intermediate species. Furthermore, the soft‐lattice nature of halide perovskites enables more facile triggering of lattice‐oxygen oxidation of nanostructured α‐PbO2, exhibiting pH‐dependent OER activity and non‐concerted proton‐electron transfer for MAPbX3@AlPO‐5 composite. As a result, the developed MAPbBr3@AlPO‐5 composite manifests an ultralow overpotential of 233 mV at 10 mA cm−2 in 1 m KOH. These findings offer facile access to halide perovskite applied to water electrolysis with enhanced intrinsic activity, providing a new paradigm for designing high‐efficiency OER electrocatalysts. © 2025 Advanced journals portfolioen_AU
dc.description.sponsorshipX.R.R., Y.Y.Z., and P.J.W. contributed equally to this work. The authors appreciate the funding support from the National Key Research Program of China (2017YFA0204800, 2016YFA0202403), the National Natural Science Foundation of China (Grant No. 22205073), the 111 Project (Grant No. B21005 and B17020), and the Fundamental Research Funds for the Central Universities (2020TS104 and 2021TS003).en_AU
dc.format.mediumPrint-Electronicen_AU
dc.identifier.articlenumbere2301166en_AU
dc.identifier.citationRen, X., Zhai, Y., Wang, P., Xu, Z., Gao, S., Chen, X., Gu, Q., Wang, B., Li, J., & Liu, S. (2023). Surface restructuring of zeolite-encapsulated halide perovskite to activate lattice oxygen oxidation for water electrolysis. Advanced Materials, 35(31), 2301166. doi:10.1002/adma.202301166en_AU
dc.identifier.issn0935-9648en_AU
dc.identifier.issn1521-4095en_AU
dc.identifier.issue31en_AU
dc.identifier.journaltitleAdvanced Materialsen_AU
dc.identifier.urihttps://doi.org/10.1002/adma.202301166en_AU
dc.identifier.urihttps://apo.ansto.gov.au/handle/10238/16300en_AU
dc.identifier.volume35en_AU
dc.languageEnglishen_AU
dc.language.isoenen_AU
dc.publisherWileyen_AU
dc.subjectZeolitesen_AU
dc.subjectHalidesen_AU
dc.subjectPerovskiteen_AU
dc.subjectCrystal latticesen_AU
dc.subjectOxygenen_AU
dc.subjectOxidationen_AU
dc.subjectWateren_AU
dc.subjectElectrolysisen_AU
dc.subjectNanocrystalsen_AU
dc.subjectElectron transferen_AU
dc.subjectCrystal structureen_AU
dc.titleSurface restructuring of zeolite-encapsulated halide perovskite to activate lattice oxygen oxidation for water electrolysisen_AU
dc.typeJournal Articleen_AU

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