Water‐Resistant Polymer Films of Cyan‐Emitting CsPbBr 2.1 Cl 0.9 Perovskite Nanocrystals for Underwater Wireless Optical Communication

ABSTRACT Underwater wireless optical communication (UWOC) holds great promise for applications in deep‐sea exploration, marine environmental monitoring, and underwater sensing, owing to its high bandwidth, low latency, and strong anti‐interference capability. Perovskite nanocrystals are considered ideal light‐source candidates for UWOC due to their emission tunability matching seawater's low‐loss window, high photoluminescence efficiency, ultrafast radiative recombination, and solution processability. However, poor water stability of perovskite nanocrystals originating from their intrinsic ionic lattice severely restricts their practical deployment in underwater environments. Herein, we report a synergistic strategy combining 2‐thiophenesulfonamide coordination passivation and isobornyl acrylate ultraviolet‐induced polymerization to prepare solution‐processable and water‐resistant polymer CsPbBr 2.1 Cl 0.9 perovskite nanocrystal films. 2‐thiophenesulfonamide passivates undercoordinated surface defects and enables stable perovskite nanocrystal dispersion in isobornyl acrylate monomer, while in situ ultraviolet‐polymerized isobornyl acrylate produces a dense protective polymer network to shield perovskite nanocrystals from water erosion. These composite films show outstanding water stability with a negligible emission intensity loss after 8 h of immersion in water. Integrated as a color‐conversion layer in a UWOC system, the perovskite nanocrystal‐based light‐emitting diode delivers a stable −3 dB bandwidth of 2.9 MHz. Using non‐return‐to‐zero amplitude shift keying modulation, the system achieves a data transmission rate of 3.48 Mbps.

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Publication Details

Journal
Laser & Photonics Review
Published
2026-10-08
DOI
https://doi.org/10.1002/lpor.72021
Primary Topic
Perovskite Materials and Applications
Type
article
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article

Water‐Resistant Polymer Films of Cyan‐Emitting CsPbBr 2.1 Cl 0.9 Perovskite Nanocrystals for Underwater Wireless Optical Communication

Andrey L. Rogach, Jing‐Jing Wang, Wei Zhang, Lin Ma et al.
Laser & Photonics Review
Perovskite Materials and Applications
article

Water‐Resistant Polymer Films of Cyan‐Emitting CsPbBr 2.1 Cl 0.9 Perovskite Nanocrystals for Underwater Wireless Optical Communication

Andrey L. Rogach, Jing‐Jing Wang, Wei Zhang, Lin Ma, Junpeng Deng, Jun‐Nan Yang, Zi‐Hua Chen, Liang‐Zhu Huang, Ren‐Hai Wang, Shuai He, Jiang‐Yun Wan, Shuo‐Shuo Zhang
article en

Abstract

ABSTRACT Underwater wireless optical communication (UWOC) holds great promise for applications in deep‐sea exploration, marine environmental monitoring, and underwater sensing, owing to its high bandwidth, low latency, and strong anti‐interference capability. Perovskite nanocrystals are considered ideal light‐source candidates for UWOC due to their emission tunability matching seawater's low‐loss window, high photoluminescence efficiency, ultrafast radiative recombination, and solution processability. However, poor water stability of perovskite nanocrystals originating from their intrinsic ionic lattice severely restricts their practical deployment in underwater environments. Herein, we report a synergistic strategy combining 2‐thiophenesulfonamide coordination passivation and isobornyl acrylate ultraviolet‐induced polymerization to prepare solution‐processable and water‐resistant polymer CsPbBr 2.1 Cl 0.9 perovskite nanocrystal films. 2‐thiophenesulfonamide passivates undercoordinated surface defects and enables stable perovskite nanocrystal dispersion in isobornyl acrylate monomer, while in situ ultraviolet‐polymerized isobornyl acrylate produces a dense protective polymer network to shield perovskite nanocrystals from water erosion. These composite films show outstanding water stability with a negligible emission intensity loss after 8 h of immersion in water. Integrated as a color‐conversion layer in a UWOC system, the perovskite nanocrystal‐based light‐emitting diode delivers a stable −3 dB bandwidth of 2.9 MHz. Using non‐return‐to‐zero amplitude shift keying modulation, the system achieves a data transmission rate of 3.48 Mbps.

Laser & Photonics Review
Guangdong University of Technology (CN), City University of Hong Kong (HK)
Openalex Percentile: Top 23%
Perovskite Materials and Applications
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