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基于碳纳米薄膜中对抗湿度响应的人手指电子学。

Human-Finger Electronics Based on Opposing Humidity-Resistance Responses in Carbon Nanofilms.

机构信息

King Abdullah University of Science and Technology (KAUST), Division of Physical Science and Engineering, COHMAS Laboratory, Thuwal, 23955-6900, Saudi Arabia.

出版信息

Small. 2017 Mar;13(11). doi: 10.1002/smll.201603486. Epub 2017 Jan 9.

DOI:10.1002/smll.201603486
PMID:28067992
Abstract

Carbon nanomaterials have excellent humidity sensing properties. Here, it is demonstrated that multiwalled carbon-nanotube (MWCNT)- and reduced-graphene-oxide (rGO)-based conductive films have opposite humidity/electrical resistance responses: MWCNTs increase their electrical resistance (positive response) and rGOs decrease their electrical resistance (negative response). The authors propose a new phenomenology that describes a "net"-like model for MWCNT films and a "scale"-like model for rGO films to explain these behaviors based on contributions from junction resistances (at interparticle junctions) and intrinsic resistances (of the particles). This phenomenology is accordingly validated via a series of experiments, which complement more classical models based on proton conductivity. To explore the practical applications of the converse humidity/resistance responses, a humidity-insensitive MWCNT/rGO hybrid conductive films is developed, which has the potential to greatly improve the stability of carbon-based electrical device to humidity. The authors further investigate the application of such films to human-finger electronics by fabricating transparent flexible devices consisting of a polyethylene terephthalate substrate equipped with an MWCNT/rGO pattern for gesture recognition, and MWCNT/rGO/MWCNT or rGO/MWCNT/rGO patterns for 3D noncontact sensing, which will be complementary to existing 3D touch technology.

摘要

碳纳米材料具有优异的湿度传感性能。在这里,研究表明,多壁碳纳米管(MWCNT)和还原氧化石墨烯(rGO)基导电薄膜具有相反的湿度/电阻响应:MWCNTs 增加其电阻(正响应),而 rGOs 降低其电阻(负响应)。作者提出了一种新的现象学,该现象学基于结电阻(在颗粒间结处)和固有电阻(颗粒的)的贡献,描述了 MWCNT 薄膜的“网状”模型和 rGO 薄膜的“片状”模型,以解释这些行为。这种现象学通过一系列实验得到了验证,这些实验补充了基于质子电导率的更经典模型。为了探索相反的湿度/电阻响应的实际应用,开发了一种对湿度不敏感的 MWCNT/rGO 混合导电薄膜,它有可能极大地提高基于碳的电子设备对湿度的稳定性。作者进一步通过制造由聚对苯二甲酸乙二醇酯(PET)基底和 MWCNT/rGO 图案组成的透明柔性器件来研究这些薄膜在人体手指电子学中的应用,该器件用于手势识别,而 MWCNT/rGO/MWCNT 或 rGO/MWCNT/rGO 图案则用于 3D 非接触式传感,这将与现有的 3D 触摸技术互补。

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