Efficient in‐Plane Exciton Transport in a Discontinuous Layered Lead‐Bromide Perovskite

ABSTRACT This study reports a new class of two‐dimensional lead‐bromide perovskite based on monovalent 4‐aminomethylbenzoic acid (AMBA) cations featuring a discontinuous inorganic layer. Strong hydrogen‐bonding interactions at the interlayer between AMBA molecules impose structural rigidity that prevents the formation of continuous metal‐halide layers, instead generating isolated linear islands of three edge‐sharing [PbBr 6 ] 4 − octahedra (Pb 3 Br 14 ). The anisotropic in‐plane arrangement of the structure is confirmed by angle‐resolved polarized Raman spectroscopy, which reveals directional vibrational modes aligned with the octahedral island orientation. Despite the discontinuous lattice, transient photoluminescence microscopy demonstrates efficient in‐plane exciton transport. Transport is strongly anisotropic, with the diffusion coefficient along the c ‐axis (0.149 cm 2 /s) exceeding that along the a ‐axis (0.042 cm 2 /s) by over threefold. This anisotropy is attributed to preferential near‐field resonant energy transfer between the anisotropically oriented islands, as confirmed by numerical simulations, offering an efficient alternative transport mechanism in discontinuous layered perovskites.

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Publication Details

Journal
Advanced Materials
Published
2026-10-08
DOI
https://doi.org/10.1002/adma.75282
Primary Topic
Perovskite Materials and Applications
Type
article
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article

Efficient in‐Plane Exciton Transport in a Discontinuous Layered Lead‐Bromide Perovskite

Davide Spirito, Eva Carolina Sañudo, Juan Cabanillas‐González, Beatriz Martín‐García et al.
Advanced Materials
Perovskite Materials and Applications
article

Efficient in‐Plane Exciton Transport in a Discontinuous Layered Lead‐Bromide Perovskite

Davide Spirito, Eva Carolina Sañudo, Juan Cabanillas‐González, Beatriz Martín‐García, Raquel Utrera‐Melero, Antonio I. Fernández‐Domínguez, Ferry Prins, José Sánchez Costa, Iván Rivilla, Antonella Cutrupi
article en

Abstract

ABSTRACT This study reports a new class of two‐dimensional lead‐bromide perovskite based on monovalent 4‐aminomethylbenzoic acid (AMBA) cations featuring a discontinuous inorganic layer. Strong hydrogen‐bonding interactions at the interlayer between AMBA molecules impose structural rigidity that prevents the formation of continuous metal‐halide layers, instead generating isolated linear islands of three edge‐sharing [PbBr 6 ] 4 − octahedra (Pb 3 Br 14 ). The anisotropic in‐plane arrangement of the structure is confirmed by angle‐resolved polarized Raman spectroscopy, which reveals directional vibrational modes aligned with the octahedral island orientation. Despite the discontinuous lattice, transient photoluminescence microscopy demonstrates efficient in‐plane exciton transport. Transport is strongly anisotropic, with the diffusion coefficient along the c ‐axis (0.149 cm 2 /s) exceeding that along the a ‐axis (0.042 cm 2 /s) by over threefold. This anisotropy is attributed to preferential near‐field resonant energy transfer between the anisotropically oriented islands, as confirmed by numerical simulations, offering an efficient alternative transport mechanism in discontinuous layered perovskites.

Advanced Materials
Madrid Institute for Advanced Studies (ES), Ikerbasque (ES), University of the Basque Country (ES), Basque Center for Materials, Applications and Nanostructures (ES), CIC nanoGUNE (ES), Material Physics Center (ES), Institut de Nanociència i Nanotecnologia de la Universitat de Barcelona, Donostia International Physics Center (ES), Universidad Autónoma de Madrid (ES), Universitat de Barcelona (ES)
Openalex Percentile: Top 22%
Perovskite Materials and Applications
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