Photon–Phonon–Electron Synergy Enables Efficient Photothermoelectric Conversion for Intelligent Fire Warning

ABSTRACT Photothermoelectric (PTE) detectors offer broad‐spectrum response and high sensitivity, but their performance and applications are fundamentally limited by the difficulty of simultaneously controlling photon absorption, phonon propagation, and charge‐carrier dynamics. Here, we report silver selenide/silver secondary phases (Ag 2 Se/Ag‐SPs) nanocomposite films comprising vertically aligned Ag‐SPs within a (00 l )‐oriented Ag 2 Se matrix, fabricated via oriented growth and confined phase separation. This customized architecture suppresses lattice thermal transport through interfacial phonon scattering and regulates carrier transport via shallow‐barrier Ag/Ag 2 Se interfaces, collectively optimizing the thermo‐electric conversion process. Moreover, plasmonic waveguiding within Ag‐SPs domains improves broadband light absorption, thereby promoting photothermal heat generation, enabling a high PTE responsivity of 126 V W −1 at 1550 nm. When integrated with machine‐learning‐based transient signal classification, this detector achieves 100% sensitivity in flame recognition, allowing sub‐second differentiation of combustion events from innocuous thermal sources. This photon–phonon–electron synergistic enhancement mechanism establishes a scalable paradigm for efficient PTE conversion, offering transformative potential for intelligent fire‐warning systems.

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Publication Details

Journal
Advanced Materials
Published
2026-09-26
DOI
https://doi.org/10.1002/adma.75105
Primary Topic
Thermal properties of materials
Type
article
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article

Photon–Phonon–Electron Synergy Enables Efficient Photothermoelectric Conversion for Intelligent Fire Warning

Moran Wang, Xiao‐Lei Shi, Johnny Chung Yin Ho, Zhiyu Hu et al.
Advanced Materials
Thermal properties of materials
article

Photon–Phonon–Electron Synergy Enables Efficient Photothermoelectric Conversion for Intelligent Fire Warning

Moran Wang, Xiao‐Lei Shi, Johnny Chung Yin Ho, Zhiyu Hu, Zhenhua Wu, Dengji Li, Boxiang Gao, Haifan Li, Zhi‐Gang Chen, Yuxuan Zhang, Shuai Zhang, Bowen Li, Zekun Liu, Shengduo Xu, Zhengtong Yao, Bin Liu, Quanxin Guo, Qitong Chen, Yan Yan, Weijun Wang
article en

Abstract

ABSTRACT Photothermoelectric (PTE) detectors offer broad‐spectrum response and high sensitivity, but their performance and applications are fundamentally limited by the difficulty of simultaneously controlling photon absorption, phonon propagation, and charge‐carrier dynamics. Here, we report silver selenide/silver secondary phases (Ag 2 Se/Ag‐SPs) nanocomposite films comprising vertically aligned Ag‐SPs within a (00 l )‐oriented Ag 2 Se matrix, fabricated via oriented growth and confined phase separation. This customized architecture suppresses lattice thermal transport through interfacial phonon scattering and regulates carrier transport via shallow‐barrier Ag/Ag 2 Se interfaces, collectively optimizing the thermo‐electric conversion process. Moreover, plasmonic waveguiding within Ag‐SPs domains improves broadband light absorption, thereby promoting photothermal heat generation, enabling a high PTE responsivity of 126 V W −1 at 1550 nm. When integrated with machine‐learning‐based transient signal classification, this detector achieves 100% sensitivity in flame recognition, allowing sub‐second differentiation of combustion events from innocuous thermal sources. This photon–phonon–electron synergistic enhancement mechanism establishes a scalable paradigm for efficient PTE conversion, offering transformative potential for intelligent fire‐warning systems.

Advanced Materials
Hong Kong Polytechnic University (HK), East China University of Science and Technology (CN), Queensland University of Technology (AU), City University of Hong Kong (HK), Shanghai Jiao Tong University (CN), Tsinghua University (CN)
Affordable and clean energy
Openalex Percentile: Top 25%
Thermal properties of materials
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