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用于生物医学应用的高范围噪声免疫超灵敏石墨烯-电解质电容应变传感器。

High-range noise immune supersensitive graphene-electrolyte capacitive strain sensor for biomedical applications.

机构信息

Dept. of Instrumentation and Applied Physics, Indian Institute of Science, Bangalore, India.

出版信息

Nanotechnology. 2019 Nov 22;30(47):475502. doi: 10.1088/1361-6528/ab3cd2. Epub 2019 Aug 20.

DOI:10.1088/1361-6528/ab3cd2
PMID:31430732
Abstract

This paper presents development and performance assessment of an innovative and a highly potent graphene-electrolyte capacitive sensor (GECS) based on the supercapacitor model. Although graphene has been widely researched and adapted in supercapacitors as electrode material, this combination has not been applied in sensor technology. A low base capacitance, generally the impeding factor in capacitive sensors, is addressed by incorporating electric double layer capacitance in GECS, and a million-fold increase in base capacitance is achieved. The high base capacitance (∼22.0 μF) promises to solve many inherent issues pertaining to capacitive sensors. GECS is fabricated by using thermally reduced microwave exfoliated graphene oxide material to form interdigitated electrodes coated with solid-state electrolyte which forms the double layer capacitance. The capacitance response of GECS on subjecting to strain is examined and an enormous operating range (∼300 nF) is seen, which is the salient feature of this sensor. The GECS showed an impressive device sensitivity of 11.24 nF kPa-1 and good immunity towards noise i.e. lead capacitance and stray capacitance. Two regimes of operation are identified based on the procedure of device fabrication. The device can be applied to varied applications and one such biomedical application of breath pattern monitoring is demonstrated.

摘要

本文提出了一种基于超级电容器模型的创新型高功效石墨烯电解质电容传感器(GECS)的开发和性能评估。尽管石墨烯已被广泛研究并应用于超级电容器作为电极材料,但这种组合尚未应用于传感器技术。通过在 GECS 中加入双电层电容,可以解决通常是电容传感器的阻碍因素的低基电容问题,并实现基电容的百万倍增加。高基电容(约 22.0 μF)有望解决与电容传感器相关的许多固有问题。GECS 是通过使用热还原微波剥离氧化石墨烯材料形成叉指电极,并在其上涂覆固态电解质来制造的,该电解质形成双电层电容。研究了 GECS 在受到应变时的电容响应,并观察到了非常宽的工作范围(约 300 nF),这是该传感器的显著特点。GECS 表现出令人印象深刻的器件灵敏度为 11.24 nF kPa-1,并且对噪声(即引线电容和杂散电容)具有良好的抗干扰能力。根据器件制造过程确定了两种工作模式。该器件可应用于各种应用中,并展示了一种生物医学应用,即呼吸模式监测。

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J Phys Chem B. 2020 Jul 30;124(30):6592-6602. doi: 10.1021/acs.jpcb.0c02319. Epub 2020 Jul 21.