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还原氧化石墨烯修饰的智能导电纸用于癌症生物传感器。

Reduced graphene oxide modified smart conducting paper for cancer biosensor.

机构信息

Nanobioelectronics Laboratory, Department of Biotechnology, Delhi Technological University, Shahbad Daulatpur, Delhi 110042, India.

Rajiv Gandhi Cancer Institute and Research Centre, Rohini, Delhi 110085, India.

出版信息

Biosens Bioelectron. 2015 Nov 15;73:114-122. doi: 10.1016/j.bios.2015.05.040. Epub 2015 May 27.

Abstract

UNLABELLED

We report results of the studies relating to the fabrication of a paper based sensor comprising of poly (3,4-ethylenedioxythiophene):poly(styrenesulfonate) (

PEDOT

PSS) and reduced graphene oxide (RGO) composite. The effect of various solvents like methanol, ethylene glycol and H2SO4 on the electrical conductivity of

PEDOT

PSS coated Whatman paper has been investigated. The conductivity of this solution processed conducting paper significantly increases from 1.16×10(-4) S cm(-1) up to ~3.57×10(-2) S cm(-1) (300 times) on treatment with ethylene glycol. The observed significant increase in electrical conductivity is due to conformational rearrangement in the polymer and is due to strong non-covalent cooperative interaction between PEDOT and the cellulose molecules. Further, incorporation of RGO into the conducting paper results in improved electrochemical performance and signal stability. This paper electrode is a promising alternative over the expensive conventional electrodes (ITO, gold and glassy carbon), that are known to have limited application in smart point-of-care (POC) devices. This low cost, flexible and environment friendly conducting paper based biosensor utilized for cancer biomarker (carcinoembryonic antigen, CEA) detection reveals high sensitivity of 25.8 µA ng(-1) mL cm(-2) in the physiological range, 1-10 ng mL(-1).

摘要

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我们报告了与制造基于纸张的传感器有关的研究结果,该传感器由聚(3,4-亚乙基二氧噻吩):聚(苯乙烯磺酸盐)(PEDOT:PSS)和还原氧化石墨烯(RGO)复合材料组成。研究了甲醇、乙二醇和 H2SO4 等各种溶剂对 PEDOT:PSS 涂布的沃特曼纸电导率的影响。用乙二醇处理后,这种溶液处理的导电纸的电导率从1.16×10(-4) S cm(-1)显著增加到3.57×10(-2) S cm(-1)(~300 倍)。电导率的显著增加是由于聚合物构象重排以及 PEDOT 与纤维素分子之间的强非共价协同相互作用所致。此外,将 RGO 掺入导电纸中可提高电化学性能和信号稳定性。与昂贵的传统电极(ITO、金和玻碳)相比,这种纸电极是一种很有前途的替代品,因为众所周知,传统电极在智能即时护理(POC)设备中的应用有限。这种低成本、灵活且环保的基于导电纸的生物传感器用于癌症生物标志物(癌胚抗原,CEA)检测,在生理范围内(1-10ng mL(-1))具有 25.8 µA ng(-1) mL cm(-2)的高灵敏度。

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