Elastically bendable chiral metal halide crystals

Metal halide single crystals exhibit superior optoelectronic properties, promising for applications in optics and energy. However, they are inherently brittle, which has posed a major challenge for use in flexible electronics. Here, we report the elastic bending in a family of chiral lead halide crystals R-(AP)PbI3 ∙ H2O, S-(AP)PbI3 ∙ H2O, R-(AP)PbI3, and S-(AP)PbI3, (AP = 3-amino-1,2-propanediol) that originates from their rigid-flex structural motif. Upon mechanical bending, the AP+ molecular units flex and rotate, causing the molecular interactions to reorganize and effectively dissipate stress. Meanwhile, the rigid [PbI3]− metal-halide chains maintain the structural integrity of the lattice, thereby conferring exceptional elastic flexibility. The devices fabricated using these crystals with a facile nonwoven manner show significantly higher sensitivity to underwater ultrasound waves than piezoelectric ceramics. Our work paves the way for integration of bendable metal halide crystals into next-generation electronic devices. Chiral metal halide crystals exhibit elastic bending via a rigid–flexible structural motif, which enables their application in underwater ultrasound sensing

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Publication Details

Journal
Nature Communications
Published
2026-10-05
DOI
https://doi.org/10.1038/s41467-026-77915-0
Primary Topic
Perovskite Materials and Applications
Type
article
Field-Weighted Citation Impact
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article

Elastically bendable chiral metal halide crystals

H. Fang, Ilya Kupenko, Xian‐He Bu, Gastón Garbarino et al.
Nature Communications
Perovskite Materials and Applications
article

Elastically bendable chiral metal halide crystals

H. Fang, Ilya Kupenko, Xian‐He Bu, Gastón Garbarino, Xiang Wu, Jonathan Paul Wright, Wei Li, Xiang Li, Susanne C. Müller, Katarzyna Skrzyńska, Qian Zhang, Ying Zhang, Cheng Qian, Yong-Ji Gong, Chen Zhao
article en

Abstract

Metal halide single crystals exhibit superior optoelectronic properties, promising for applications in optics and energy. However, they are inherently brittle, which has posed a major challenge for use in flexible electronics. Here, we report the elastic bending in a family of chiral lead halide crystals R-(AP)PbI3 ∙ H2O, S-(AP)PbI3 ∙ H2O, R-(AP)PbI3, and S-(AP)PbI3, (AP = 3-amino-1,2-propanediol) that originates from their rigid-flex structural motif. Upon mechanical bending, the AP+ molecular units flex and rotate, causing the molecular interactions to reorganize and effectively dissipate stress. Meanwhile, the rigid [PbI3]− metal-halide chains maintain the structural integrity of the lattice, thereby conferring exceptional elastic flexibility. The devices fabricated using these crystals with a facile nonwoven manner show significantly higher sensitivity to underwater ultrasound waves than piezoelectric ceramics. Our work paves the way for integration of bendable metal halide crystals into next-generation electronic devices. Chiral metal halide crystals exhibit elastic bending via a rigid–flexible structural motif, which enables their application in underwater ultrasound sensing

Nature Communications
Nankai University (CN), European Synchrotron Radiation Facility (FR), China University of Geosciences (CN), State Key Laboratory of Geological Processes and Mineral Resources, University of Edinburgh (GB)
Openalex Percentile: Top 47%
Perovskite Materials and Applications
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