材料科学
兴奋剂
红外线的
光电子学
短波
噪音(视频)
空间电荷
光电探测器
调制(音乐)
次声
光学
物理
电子
图像(数学)
人工智能
辐射传输
量子力学
计算机科学
声学
作者
Tae Hyuk Kim,Sang Young Jeong,Seunghyun Oh,Yelim Kang,Min Jong Lee,Min Hun Jee,Han Young Woo,Jae Won Shim
标识
DOI:10.1002/adma.202500126
摘要
This study investigates the influence of chemical doping on the spatial-charge distributions and carrier-tunneling mechanisms in single-polymer shortwave-infrared (SWIR) photomultiplication (PM)-organic photodetectors (OPDs). By systematically analyzing the optical and photoelectric properties influenced by chemical doping, it is identified that dopant-induced defects as space charges significantly contribute to Fowler-Nordheim (FN) tunneling, thereby impacting the performance of SWIR OPDs. At a doping concentration of 0.5 mm, the formation of positively charged carriers (polarons and/or bipolarons) within the polymer matrix initiates, thereby facilitating SWIR absorption and contributing to the balance between photocurrent and noise by mitigating FN tunneling through the reduction of defect density (ND). However, as the doping concentration exceeds 5 mm, the increased ND accumulates more space charge, accelerating FN tunneling. This enhances photocurrent generation and amplifies noise disproportionately, ultimately limiting OPD performance. Under ND-minimized optimum doping concentration (at 0.5 mm), the OPD exhibited a noise equivalent power of 9.85 pW (at -8 V, bandwidth = 1 Hz, and wavelength = 1490 nm), and a linear dynamic range of 42 dB. These findings demonstrate the role of chemical doping in enhancing the performance of SWIR PM-OPDs, paving the way for advanced photonic sensors.
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