低噪声短波红外有机光电探测器高能带开关调制中化学掺杂介导的空间电荷控制

IF 26.8 1区 材料科学 Q1 CHEMISTRY, MULTIDISCIPLINARY
Tae Hyuk Kim, Sang Young Jeong, Seunghyun Oh, Yelim Kang, Min Jong Lee, Min Hun Jee, Han Young Woo, Jae Won Shim
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引用次数: 0

摘要

研究了化学掺杂对单聚合物短波红外(SWIR)光电倍增(PM)-有机光电探测器(OPDs)空间电荷分布和载流子隧穿机制的影响。通过系统分析化学掺杂对光学和光电性能的影响,发现掺杂诱导的缺陷作为空间电荷显著地促进了Fowler-Nordheim (FN)隧穿,从而影响了SWIR opd的性能。当掺杂浓度为0.5 mm时,聚合物基体内开始形成带正电荷的载流子(极化子和/或双极化子),从而促进SWIR吸收,并通过降低缺陷密度(ND)来减轻FN隧穿,从而实现光电流和噪声之间的平衡。然而,当掺杂浓度超过5 mm时,增加的ND积累了更多的空间电荷,加速了FN隧穿。这增加了光电流的产生,并不成比例地放大了噪声,最终限制了OPD的性能。在nd最小的最佳掺杂浓度(0.5 mm)下,OPD的噪声等效功率为9.85 pW(−8 V,带宽= 1 Hz,波长= 1490 nm),线性动态范围为42 dB。这些发现证明了化学掺杂在提高SWIR pm - opd性能方面的作用,为先进的光子传感器铺平了道路。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Control of Chemical Doping-Mediated Space Charge for Energetic Band-Switching Modulation in Low-Noise Shortwave-Infrared Organic Photodetector

Control of Chemical Doping-Mediated Space Charge for Energetic Band-Switching Modulation in Low-Noise Shortwave-Infrared Organic Photodetector

Control of Chemical Doping-Mediated Space Charge for Energetic Band-Switching Modulation in Low-Noise Shortwave-Infrared Organic Photodetector

Control of Chemical Doping-Mediated Space Charge for Energetic Band-Switching Modulation in Low-Noise Shortwave-Infrared Organic Photodetector

Control of Chemical Doping-Mediated Space Charge for Energetic Band-Switching Modulation in Low-Noise Shortwave-Infrared Organic Photodetector

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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来源期刊
Advanced Materials
Advanced Materials 工程技术-材料科学:综合
CiteScore
43.00
自引率
4.10%
发文量
2182
审稿时长
2 months
期刊介绍: Advanced Materials, one of the world's most prestigious journals and the foundation of the Advanced portfolio, is the home of choice for best-in-class materials science for more than 30 years. Following this fast-growing and interdisciplinary field, we are considering and publishing the most important discoveries on any and all materials from materials scientists, chemists, physicists, engineers as well as health and life scientists and bringing you the latest results and trends in modern materials-related research every week.
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