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October 1, 2025Advanced Functional Materials6 citations

High‐Detectivity Self‐Powered NIR Organic Photodetectors Beyond 1050 nm Enabled by an A‐π‐D‐π’‐A‐type Non‐Fullerene Acceptor

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WYWenbo YangWWWeiping WangZXZihao Xiao

Key Points

  • The newly developed OPDs achieve a notable specific detectivity over 10^13 Jones, showcasing high performance in NIR applications.
  • The innovative design of the non-fullerene acceptors minimizes non-radiative energy loss and optimizes morphology for enhanced function.
  • Real-time monitoring capabilities in photoplethysmography highlight the potential healthcare applications of these advanced OPDs.
  • A very low dark current density of 1.65 × 10^-10 A cm^-2 suggests excellent performance and efficiency for the OPDs.

Abstract

Abstract Near‐infrared (NIR) organic photodetectors (OPDs) play a vital role in various fields, including biomedical imaging, optical communications, and night vision. However, limited by the energy gap law, the non‐radiative recombination rate increases exponentially as the material's bandgap decreases, which restricts the development of high‐performance OPD. Herein, novel A‐π‐D‐π’‐A‐type non‐fullerene acceptors (NFAs) is developed by effectively modulating the degree of twist in the conjugated backbone, yielding two half‐twisted‐half‐planar NFAs: h‐ITT‐4F and h‐ITT‐4Cl. The fluorinated molecule h‐ITT‐4F demonstrates optimized film morphology and crystalline intensification compared to its chlorinated counterpart h‐ITT‐4Cl. The integrated advantages confer upon PTB7‐Th:h‐ITT‐4F‐based OPDs suppressed nonradiative energy loss, enhanced charge transport, and reduced trap density. This leads to a self‐powered OPD featuring an ultra‐low dark current density (1.65 × 10 −10 A cm −2 ), notable specific detectivity ( D * sh surpassing 10 13 Jones across 400–1000 nm), and a −3 dB cutoff frequency over 200 kHz. Such metrics rank among the top‐performing results reported to date. Meanwhile, the OPDs demonstrate real‐time photoplethysmography monitoring, resolving systolic/diastolic features, showcasing their potential in biohealth sensing. These findings highlight a promising molecular design strategy for narrow‐bandgap NFAs, enabling minimized non‐radiative recombination and optimized morphology, and offering substantial potential for high‐performance NIR OPDs in biomedical sensing applications.

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Cite This Study

Yang et al. (2025) studied this question.

synapsesocial.com/papers/68dd9537fe798ba2fc4997a9https://doi.org/10.1002/adfm.202520517
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