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用于可重复电化学响应的全喷墨打印多层石墨烯基柔性电极。

Fully inkjet-printed multilayered graphene-based flexible electrodes for repeatable electrochemical response.

作者信息

Pandhi Twinkle, Cornwell Casey, Fujimoto Kiyo, Barnes Pete, Cox Jasmine, Xiong Hui, Davis Paul H, Subbaraman Harish, Koehne Jessica E, Estrada David

机构信息

Micron School of Materials Science and Engineering, Boise State University Boise ID 83725-2090 USA

Department of Chemistry, Northwest Nazarene University Nampa ID 83686 USA.

出版信息

RSC Adv. 2020 Oct 16;10(63):38205-38219. doi: 10.1039/d0ra04786d. eCollection 2020 Oct 15.

DOI:10.1039/d0ra04786d
PMID:35517530
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC9057201/
Abstract

Graphene has proven to be useful in biosensing applications. However, one of the main hurdles with printed graphene-based electrodes is achieving repeatable electrochemical performance from one printed electrode to another. We have developed a consistent fabrication process to control the sheet resistance of inkjet-printed graphene electrodes, thereby accomplishing repeatable electrochemical performance. Herein, we investigated the electrochemical properties of multilayered graphene (MLG) electrodes fully inkjet-printed (IJP) on flexible Kapton substrates. The electrodes were fabricated by inkjet printing three materials - (1) a conductive silver ink for electrical contact, (2) an insulating dielectric ink, and (3) MLG ink as the sensing material. The selected materials and fabrication methods provided great control over the ink rheology and material deposition, which enabled stable and repeatable electrochemical response: bending tests revealed the electrochemical behavior of these sensors remained consistent over 1000 bend cycles. Due to the abundance of structural defects (, edge defects) present in the exfoliated graphene platelets, cyclic voltammetry (CV) of the graphene electrodes showed good electron transfer ( = 1.125 × 10 cm s) with a detection limit (0.01 mM) for the ferric/ferrocyanide redox couple, [Fe(CN)], which is comparable or superior to modified graphene or graphene oxide-based sensors. Additionally, the potentiometric response of the electrodes displayed good sensitivity over the pH range of 4-10. Moreover, a fully IJP three-electrode device (MLG, platinum, and Ag/AgCl) also showed quasi-reversibility compared to a single IJP MLG electrode device. These findings demonstrate significant promise for scalable fabrication of a flexible, low cost, and fully-IJP wearable sensor system needed for space, military, and commercial biosensing applications.

摘要

石墨烯已被证明在生物传感应用中很有用。然而,基于印刷石墨烯的电极的主要障碍之一是从一个印刷电极到另一个印刷电极实现可重复的电化学性能。我们开发了一种一致的制造工艺来控制喷墨印刷石墨烯电极的薄层电阻,从而实现可重复的电化学性能。在此,我们研究了在柔性聚酰亚胺(Kapton)基板上完全喷墨印刷(IJP)的多层石墨烯(MLG)电极的电化学性质。这些电极是通过喷墨印刷三种材料制成的:(1)用于电接触的导电银墨水,(2)绝缘介电墨水,以及(3)作为传感材料的MLG墨水。所选材料和制造方法对墨水流变学和材料沉积提供了很好的控制,这使得能够实现稳定且可重复的电化学响应:弯曲测试表明,这些传感器在1000次弯曲循环中的电化学行为保持一致。由于剥落的石墨烯片层中存在大量结构缺陷(如边缘缺陷),石墨烯电极的循环伏安法(CV)显示出良好的电子转移(= 1.125 × 10 cm s),对于铁氰化铁/亚铁氰化铁氧化还原对[Fe(CN)]的检测限为0.01 mM,这与改性石墨烯或基于氧化石墨烯的传感器相当或更优。此外,电极的电位响应在4 - 10的pH范围内显示出良好的灵敏度。而且,与单个IJP MLG电极装置相比,一个完全IJP的三电极装置(MLG、铂和Ag/AgCl)也显示出准可逆性。这些发现为可扩展制造用于太空、军事和商业生物传感应用所需的柔性、低成本且完全IJP的可穿戴传感器系统展示了巨大的前景。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/20e8/9057201/3c9ff698a896/d0ra04786d-f6.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/20e8/9057201/ca8b9de70b3e/d0ra04786d-f1.jpg
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https://cdn.ncbi.nlm.nih.gov/pmc/blobs/20e8/9057201/3c9ff698a896/d0ra04786d-f6.jpg
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https://cdn.ncbi.nlm.nih.gov/pmc/blobs/20e8/9057201/2499083eb9e7/d0ra04786d-f2.jpg
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