Active Materials & Manufacturing Chemistry

Advanced Organic Semiconductor Materials for Flexible SWIR Photodetection

Summary

Original abstract (not yet simplified)

SWIRFlex-DT aims to deliver a paradigm shift in shortwave infrared (SWIR) sensing by pioneering organic semiconductor technologies that are scalable, sustainable, and high-performing. The project introduces ultra-low bandgap organic semiconductors—including SWIR-absorbing polymers and two-dimensional conjugated polymers (2DCPs)—engineered specifically for the 1000–2500 nm spectral range. Using advanced synthesis methods such as surfactant-monolayer-assisted interfacial synthesis (SMAIS), the consortium will achieve large-area, highly...

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SWIRFlex-DT aims to deliver a paradigm shift in shortwave infrared (SWIR) sensing by pioneering organic semiconductor technologies that are scalable, sustainable, and high-performing. The project introduces ultra-low bandgap organic semiconductors—including SWIR-absorbing polymers and two-dimensional conjugated polymers (2DCPs)—engineered specifically for the 1000–2500 nm spectral range. Using advanced synthesis methods such as surfactant-monolayer-assisted interfacial synthesis (SMAIS), the consortium will achieve large-area, highly crystalline thin films with exceptional charge mobility. These materials will enable a new class of photodetectors, including high-speed organic photodiodes, ambipolar organic phototransistors (OTFTs), and nanogap electrode photodetectors operating in the GHz range.SWIRFlex-DT combines world-leading academic and industrial partners in a highly interdisciplinary consortium. Together, we will develop and validate SWIR imagers ranging from 64×64 rigid prototypes to large-area flexible arrays, targeting real-world use cases such as vascular imaging, wearable health monitoring, LiDAR, night vision, and environmental sensing. The project emphasizes co-design with end-users, life cycle sustainability, and early-stage regulatory alignment (including CE/ISO compliance), ensuring market-oriented innovation.Going beyond state-of-the-art, SWIRFlex-DT will position Europe as a leader in next-generation optoelectronics, reduce reliance on InGaAs-based imports, and establish a fully European value chain for organic SWIR technologies—delivering scientific breakthroughs with transformative societal and industrial impact.

Related Research

Grants with similar aims, by meaning.

Near-Infrared Organic Semiconductor Materials for Optoelectronic Technologies
Advanced Semiconductor Photodetectors
Organic Photodetectors for Applications as Low-cost Sensors (OPALS)
Flexible Hyperspectral Infrared Detectors
Interfacial energetics and charge carrier dynamics in organic and hybrid photo electron sensors

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