用于多尺寸纳米粒子检测的电压调制聚合物纳米孔场效应晶体管

Feng Zhou, Lin Li, Qiannan Xue
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引用次数: 0

摘要

与生物纳米孔相比,固态纳米孔具有一系列明显的优势,如结构多样性、更高的稳定性和耐久性;这使得它们在高分辨率纳米粒子传感方面大有可为。生物纳米孔具有应力响应开关的门控特性,对特定分子具有特异性。本文从生物纳米孔中汲取灵感,介绍了一种具有场效应特性的新型聚合物纳米孔,在其构造中利用了导电聚合物,展示了引人入胜的门控行为。值得注意的是,在该器件中,聚合物层充当了栅极,只需调节栅极电压,就能精确控制孔内外的源漏电流响应。这一独特功能可以微调纳米孔对不同尺寸纳米粒子的敏感性,并促进其在多种模式下运行。实验结果表明,所开发的聚合物纳米孔场效应晶体管在不同的外加电压下检测不同大小的纳米粒子时,具有显著的选择性。所提出的单个器件展示了检测多种类型纳米粒子的卓越能力,显示了其在生物粒子分析和医疗诊断领域广泛应用的巨大潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Voltage-modulated polymer nanopore field-effect transistor for multi-sized nanoparticle detection
Solid-state nanopores offer a range of distinct advantages over biological nanopores, such as structural diversity and greater stability and durability; this makes them highly promising for high-resolution nanoparticle sensing. Biological nanopores can exhibit gating characteristics with stress-responsive switches and can demonstrate specificity toward particular molecules. Drawing inspiration from biological nanopores, this paper introduces a novel polymer nanopore with field-effect characteristics, leveraging a conductive polymer in its construction to showcase intriguing gating behavior. Notably, in this device, the polymer layer serves as the gate, enabling precise control over the source–drain current response inside and outside the pore by simply adjusting the gate voltage. This unique feature allows fine-tuning of the nanopore’s sensitivity to nanoparticles of varying sizes and facilitates its operation in multiple modes. Experimental results reveal that the developed polymer nanopore field-effect transistor demonstrates remarkable selectivity in detecting nanoparticles of various sizes under different applied voltages. The proposed single device demonstrates the exceptional ability to detect multiple types of nanoparticle, showcasing its immense potential for a wide range of applications in biological-particle analysis and medical diagnostics.
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