Wang Yupu, Li Mengfan, Wang Ruochen, Shi Hanzhe, Li Feng, Zhu Yu, Li Guanghui, Ni Wang, Chen Yongsheng, Li Miaomiao, Geng Yanhou
School of Materials Science and Engineering, State Key Laboratory of Advanced Materials for Intelligent Sensing, Tianjin Key Laboratory of Molecular Optoelectronic Science and Key Laboratory of Organic Integrated Circuits, Ministry of Education, Collaborative Innovation Center of Chemical Science and Engineering (Tianjin), Tianjin University, Tianjin 300072, China.
The Centre of Nanoscale Science and Technology and Key Laboratory of Functional Polymer Materials, Institute of Polymer Chemistry, Tianjin Key Laboratory of Functional Polymer Materials, College of Chemistry, and Renewable Energy Conversion and Storage Center, Nankai University, Tianjin 300071, China.
ACS Appl Mater Interfaces. 2025 Jul 23;17(29):42162-42173. doi: 10.1021/acsami.5c06999. Epub 2025 Jul 11.
Stretchable near-infrared organic photodetectors (NIR OPDs) are crucial for the development of wearable and implantable electronics. However, these devices commonly underperform compared to their rigid counterparts, primarily due to the lack of high-quality stretchable transparent electrodes. Here, we develop silver nanowires (AgNWs)/thermoplastic polyurethane (TPU) composite electrodes by introducing 3-[-tris(hydroxymethyl)methylamino]-2-hydroxypropanesulfonic acid sodium salt (HOS). The resulting AgNWs-HOS/TPU electrodes show impressive optical transmittance and low sheet resistance (12 Ω·sq), comparable to ITO/glass electrodes. Notably, the incorporation of HOS significantly improves the adhesion between AgNWs and TPU, ensuring a low sheet resistance (21.3 Ω·sq) even under mechanical deformation of 80%. Consequently, the AgNWs-HOS/TPU-based stretchable OPDs exhibit a record-high shot-noise-limited specific detectivity (*) of 5.58 × 10 Jones at 800 nm, comparable to rigid devices. Moreover, these stretchable devices maintain a * > 10 Jones after 500 stretching cycles at 50% strain and sustain a * over 10 Jones under continuous stretching at 30% strain for over 80 min, ranking as the highest value among stretchable OPDs in photovoltaic mode reported so far. Furthermore, the stretchable NIR OPDs are successfully applied in pulse signal detection, imaging, and optical communication, and they are capable of accurate signal detection after cyclic stretching, which demonstrates great potential in wearable and implantable devices.
可拉伸近红外有机光电探测器(NIR OPDs)对于可穿戴和可植入电子设备的发展至关重要。然而,与刚性同类器件相比,这些器件通常性能不佳,主要原因是缺乏高质量的可拉伸透明电极。在此,我们通过引入3-[-三(羟甲基)甲氨基]-2-羟基丙烷磺酸钠盐(HOS)来制备银纳米线(AgNWs)/热塑性聚氨酯(TPU)复合电极。所得的AgNWs-HOS/TPU电极显示出令人印象深刻的光学透过率和低方阻(12Ω·sq),与ITO/玻璃电极相当。值得注意的是,HOS的加入显著改善了AgNWs与TPU之间的粘附力,即使在80%的机械变形下也能确保低方阻(21.3Ω·sq)。因此,基于AgNWs-HOS/TPU的可拉伸OPDs在800nm处表现出创纪录的高达5.58×10琼斯的散粒噪声限制比探测率(),与刚性器件相当。此外,这些可拉伸器件在50%应变下经过500次拉伸循环后保持>10琼斯,并且在30%应变下连续拉伸超过80分钟时维持*超过10琼斯,这是迄今为止报道的光伏模式下可拉伸OPDs中的最高值。此外,可拉伸NIR OPDs成功应用于脉冲信号检测、成像和光通信,并且在循环拉伸后能够进行准确的信号检测,这表明其在可穿戴和可植入设备中具有巨大潜力。