Dong Hwan Kim, Dong Hwa Kwak, Seokyoung Ahn and Jong Soo Ko*,
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引用次数: 0
摘要
我们在此展示了一种基于氧化铜纳米线的高性能光电探测器,该纳米线是通过碱性湿氧化制备的。该器件具有显著的光电性能,包括在光强范围内具有一致的光电流响应,在低光强下具有高响应性(在0.08 mW/cm2时高达23.69 a /W)和探测性(在0.08 mW/cm2时高达9.95 × 1011 Jones),以及约17 ms的快速响应时间。结果表明,该CuO纳米线光电探测器可以通过测量光电流的变化,有效地实时监测多壁碳纳米管(MWCNTs)的分散状态。光电探测器的响应与传统的UV-Vis光谱测量结果相关良好,证实了它能够探测到MWCNT色散的细微变化。这种方法在分散过程中提供即时反馈,允许纳米材料合成的动态优化。我们的研究结果证明了氧化铜纳米线光电探测器在纳米材料生产中有效的原位质量控制的潜力,并为包括环境传感和生物医学诊断在内的各个领域的实时监测开辟了有前途的途径。
Real-Time Nanoparticle Dispersion Monitoring via CuO Nanowire Photodetectors: An Effective Approach for In Situ Nanomaterial Synthesis Control
We herein demonstrate a high-performance photodetector based on copper oxide (CuO) nanowires fabricated via alkaline wet oxidation. The device exhibits notable optoelectronic properties, including a consistent photocurrent response over a range of light intensities, high responsivity (up to 23.69 A/W at 0.08 mW/cm2) and detectivity (up to 9.95 × 1011 Jones at 0.08 mW/cm2) at low light intensities, and fast response times of approximately 17 ms. Our results reveal that this CuO nanowire photodetector can effectively monitor the dispersion state of multiwalled carbon nanotubes (MWCNTs) in real-time by measuring changes in photocurrent. The photodetector response correlated well with conventional UV–Vis spectroscopy measurements, confirming its capability to detect subtle changes in the MWCNT dispersion. This approach provides immediate feedback during the dispersion process, allowing for dynamic optimization of the nanomaterial synthesis. Our findings demonstrate the potential of CuO nanowire photodetectors for effective in situ quality control in nanomaterial production and open promising avenues for real-time monitoring in various fields, including environmental sensing and biomedical diagnostics.
期刊介绍:
ACS Applied Electronic Materials is an interdisciplinary journal publishing original research covering all aspects of electronic materials. The journal is devoted to reports of new and original experimental and theoretical research of an applied nature that integrate knowledge in the areas of materials science, engineering, optics, physics, and chemistry into important applications of electronic materials. Sample research topics that span the journal's scope are inorganic, organic, ionic and polymeric materials with properties that include conducting, semiconducting, superconducting, insulating, dielectric, magnetic, optoelectronic, piezoelectric, ferroelectric and thermoelectric.
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