Interfacial alloying between lead halide perovskite crystals and hybrid glasses

Author:

Li Xuemei,Huang Wengang,Krajnc AndražORCID,Yang Yuwei,Shukla AtulORCID,Lee JaehoORCID,Ghasemi Mehri,Martens IsaacORCID,Chan BunORCID,Appadoo Dominique,Chen Peng,Wen XiaomingORCID,Steele Julian A.,Hackbarth Haira G.,Sun Qiang,Mali GregorORCID,Lin Rijia,Bedford Nicholas M.,Chen Vicki,Cheetham Anthony K.ORCID,Tizei Luiz H. G.ORCID,Collins Sean M.ORCID,Wang LianzhouORCID,Hou JingweiORCID

Abstract

AbstractThe stellar optoelectronic properties of metal halide perovskites provide enormous promise for next-generation optical devices with excellent conversion efficiencies and lower manufacturing costs. However, there is a long-standing ambiguity as to whether the perovskite surface/interface (e.g. structure, charge transfer or source of off-target recombination) or bulk properties are the more determining factor in device performance. Here we fabricate an array of CsPbI3 crystal and hybrid glass composites by sintering and globally visualise the property-performance landscape. Our findings reveal that the interface is the primary determinant of the crystal phases, optoelectronic quality, and stability of CsPbI3. In particular, the presence of a diffusion “alloying” layer is discovered to be critical for passivating surface traps, and beneficially altering the energy landscape of crystal phases. However, high-temperature sintering results in the promotion of a non-stoichiometric perovskite and excess traps at the interface, despite the short-range structure of halide is retained within the alloying layer. By shedding light on functional hetero-interfaces, our research offers the key factors for engineering high-performance perovskite devices.

Funder

Department of Education and Training | Australian Research Council

Publisher

Springer Science and Business Media LLC

Subject

General Physics and Astronomy,General Biochemistry, Genetics and Molecular Biology,General Chemistry,Multidisciplinary

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