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High-sensitivity deep shortwave infrared organic photodetectors enabled by selenium-integrated quinoidal molecular semiconductor

Wenkui Wei, Bingyan Yin, Yeye Wang, Jing Wang, Xia Zhou, Baoqi Wu, Zhaochen Lv, Fan‐Cheng Kong, Xianqiang Xie, Wei Chen, Haozhe Feng, Yunhao Cao, Yuchuan Tian, Kangzhe Liu, Mingqun Yang, Yanjun Fang, Sha Liu, Philip C. Y. Chow, Guanghao Lu, Guangye Zhang, Junyu Li, Fei Huang, Yong Cao, Chunhui Duan

Revista con revisión por paresUso en el mundo real

En palabras de los autores

Developing organic photodetectors (OPDs) that can detect in deep shortwave infrared (deep-SWIR) region (1.2–1.6 μm) is technologically important. Yet, the performance of the state-of-the-art deep-SWIR OPDs remains substantially limited. Herein, we report a selenium-integrated quinoidal small molecular acceptor, SeBz-4Cl, enabling highly sensitive deep-SWIR photodetection. Selenium incorporation enhances quinoidal character along the conjugated backbone of the molecules, thus expanding absorption approaching 1.5 μm. Moreover, SeBz-4Cl with strengthened intermolecular interactions led to an ideal film morphology, which reduced Urbach energy and favored charge dynamics. Under −1 V voltage bias, the SeBz-4Cl-based OPD achieved a low dark current density of 2.97 × 10−7 A cm−2 and an external quantum efficiency (EQE) of 7.8% at 1310 nm, together with a high specific detectivity (D*) exceeding 1011 Jones across 500–1400 nm, representing advanced deep-SWIR OPD performance. Furthermore, an optical communication system and a flexible imager under 1.2 μm illumination were demonstrated, highlighting potential of these deep-SWIR OPDs for information electronics and next generation optoelectronic applications in future. Organic photodetectors for deep shortwave infrared light remain limited in sensitivity and spectral reach. Wei et al. developed a selenium-integrated molecule with a high specific detectivity exceeding 1011 Jones across 500–1400 nm, which enables flexible imaging and optical communication.

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Apareció: domingo, 27 de septiembre. Nature Communications. Revista con revisión por pares.

DOI: 10.1038/s41467-026-78139-y