Structural dynamics of melting and glass formation in a two-dimensional hybrid perovskite
Abstract
Abstract Hybrid organic-inorganic perovskites (HOIPs) have garnered significant attention for their crystalline properties, yet recent findings reveal that they can also form liquid and glassy phases, offering an alternative platform for understanding non-crystalline materials. In this study, we present a detailed investigation into the structural dynamics of the melting and glass formation process of a two-dimensional (2D) HOIP, (S−(−)−1-(1−naphthyl)ethylammonium)2PbBr4. Compared to its crystalline counterpart, the glass exhibits superior mechanical properties, including higher Young’s modulus and hardness. Our structural studies reveal that the liquid and glass formed from the 2D HOIP exhibit network-forming behaviour, featuring limited short-range order within individual octahedra, partial retention of metal-halide-metal connectivity between neighbouring octahedra, and residual structural correlations mediated by organic cations. We then combine in situ variable-temperature X-ray total scattering experiments, terahertz far-infrared absorption spectroscopy and solid-state nuclear magnetic resonance techniques to study the melting mechanism and the nature of the HOIP liquid obtained. Our results deepen the understanding of the structural evolution and property relationships in HOIP glasses, providing a foundation for their potential applications in advanced phase-change material technologies.
Article Details
Authors (12)
Chumei Ye
Lauren N. McHugh
Pierre Florian
Department of Chemistry and Applied Biosciences
Ruohan Yu
Wuhan University of Technology the Sanya Science and Education Innovation
Celia Castillo-Blas
Celia Chen
Arad Lang
Yuhang Dai
Department of Engineering Science, University of Oxford, Parks Road, Oxford OX1 3PJ, U.K.
Jingwei Hou
The University of Queensland , , , ,
David A. Keen
ISIS Facility, Rutherford Appleton Laboratory, Harwell Campus, Didcot, Oxfordshire OX11 0QX, U.K.
Siân E. Dutton
Cavendish Laboratory, University of Cambridge, JJ Thomson Avenue, Cambridge CB3 0US, U.K.
Thomas D. Bennett