Solution-processed organic infrared photodetectors operating beyond 1.4 μm for sensitive environmental monitoring

Photon energies in the short-wave infrared (SWIR) beyond 1.4 μm enable access to vibrational-overtone signatures of O–H, C–H, and N–H bonds in pollutants and waste materials, offering an imaging-based nondestructive approach for environmental monitoring. However, current SWIR imaging technologies rely on costly epitaxial semiconductors incompatible with monolithic integration, limiting consumer-grade deployment. Here we report a cost-effective organic SWIR imager with response beyond 1.4 μm, integrating high-detectivity organic photodetectors (OPDs) with amorphous silicon thin-film transistors via solution processing. The developed highly-ordered SWIR organic semiconductors with (halogenated) thiophene-fused quinoid terminals exhibit ultra-narrow optical bandgaps of 0.68–0.94 eV and Urbach energies down to 23 meV. The SWIR OPDs achieve spectral response from 0.3 μm to 1.5–1.7 μm with responsivities up to ∼0.1 A W −1 and specific detectivities of 2.03–4.60 × 10 10 Jones at 1.4 μm. The active-matrix SWIR imagers achieve accurate oil-leak monitoring in simulated seawater (R 2 = 0.993–0.997) and reliable waste-textile classification (silhouette score = 0.824), demonstrating their capabilities in environmental monitoring.

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Publication Details

Journal
Science Advances
Published
2026-10-07
DOI
https://doi.org/10.1126/sciadv.aeg4558
Primary Topic
Organic Electronics and Photovoltaics
Type
article
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article

Solution-processed organic infrared photodetectors operating beyond 1.4 μm for sensitive environmental monitoring

Yifei Geng, Yuze Lin, Tengfei Li, Zhenzhen Zhang et al.
Science Advances
Organic Electronics and Photovoltaics
article

Solution-processed organic infrared photodetectors operating beyond 1.4 μm for sensitive environmental monitoring

Yifei Geng, Yuze Lin, Tengfei Li, Zhenzhen Zhang, Huiqing Hou
article en

Abstract

Photon energies in the short-wave infrared (SWIR) beyond 1.4 μm enable access to vibrational-overtone signatures of O–H, C–H, and N–H bonds in pollutants and waste materials, offering an imaging-based nondestructive approach for environmental monitoring. However, current SWIR imaging technologies rely on costly epitaxial semiconductors incompatible with monolithic integration, limiting consumer-grade deployment. Here we report a cost-effective organic SWIR imager with response beyond 1.4 μm, integrating high-detectivity organic photodetectors (OPDs) with amorphous silicon thin-film transistors via solution processing. The developed highly-ordered SWIR organic semiconductors with (halogenated) thiophene-fused quinoid terminals exhibit ultra-narrow optical bandgaps of 0.68–0.94 eV and Urbach energies down to 23 meV. The SWIR OPDs achieve spectral response from 0.3 μm to 1.5–1.7 μm with responsivities up to ∼0.1 A W −1 and specific detectivities of 2.03–4.60 × 10 10 Jones at 1.4 μm. The active-matrix SWIR imagers achieve accurate oil-leak monitoring in simulated seawater (R 2 = 0.993–0.997) and reliable waste-textile classification (silhouette score = 0.824), demonstrating their capabilities in environmental monitoring.

Science AdvancesVol. 12(41)
Chinese Academy of Sciences (CN), Beijing National Laboratory for Molecular Sciences (CN), Institute of Chemistry (CN), University of Chinese Academy of Sciences (CN)
Openalex Percentile: Top 22%
Organic Electronics and Photovoltaics
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