激光诱导纸电子学与基于旁膜的微流体的无缝集成作为一个通用的基于纸的电分析平台。

IF 8.2 2区 材料科学 Q1 MATERIALS SCIENCE, MULTIDISCIPLINARY
Lingyin Meng*, Danfeng Cao, Jonas Oshaug Pedersen, Grzegorz Greczynski, Vladyslav Rogoz, Warakorn Limbut and Mats Eriksson, 
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引用次数: 0

摘要

在护理点(PoC)电分析中广泛使用不可再生材料,例如带有电子仪表的试纸,无意中造成了电子废物。纸,传统上被用作被动衬底,提供了一种可再生的替代品,作为一种可持续的和通用的电分析平台,用于现场分析。在这里,我们展示了激光诱导电子元件和基于旁膜的微流体在一张纸上的制造和集成,作为水系统和有机系统的通用电分析平台。使用阻燃剂和激光处理,我们能够将被动纤维素纸直接转化为激光诱导石墨(PLIG),允许在一张纸上制造导电通道和各种定制几何形状的电子元件,这一过程被称为激光诱导纸电子学。然后,通过在低温(60°C)下将疏水parfilm热压到亲水纤维素纸(paper-para)上仅15秒,成功地将微流体通道图案化,实现亚毫米分辨率为0.45 mm。所得到的纸张显示出与广泛的水溶液和有机溶剂的相容性。该工艺有助于将激光诱导的纸电子与基于parafilm的微流控无缝集成在单个单片纸上,称为微流控PLIG (μPLIG),既保留了纸电子的结构完整性和电化学性能,又保留了基于parafilm的纸微流控的流体特性。示范性应用包括灵敏度为-40.3 mV pH-1的pH传感,灵敏度为0.92 μA mM-1的乳酸生物传感,以及乙醇混合物中维生素D3的检测,线性范围为5-65 μM,表明该平台在水和有机系统中的传感器应用的兼容性和多功能性。这项研究为一个独特的集成、经济、环保的电分析平台μPLIG奠定了基础,μPLIG将基于纸张的LIG电子和基于parafilm的微流体结合在一个单一的一次性衬底上。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Seamless Integration of Laser-Induced Papertronics with Parafilm-Based Microfluidics as a Versatile Paper-Based Electroanalytical Platform

The widespread use of nonrenewable materials in point-of-care (PoC) electroanalysis, such as test strips with electronic meters, has inadvertently contributed to electronic waste. Paper, traditionally used as a passive substrate, offers a renewable alternative as a sustainable and versatile electroanalytical platform for on-site analysis. Here, we present the fabrication and integration of laser-induced electronic components and Parafilm-based microfluidics on a single sheet of paper as a versatile electroanalytical platform for both aqueous and organic systems. Using a flame retardant and laser treatment, we enable a direct conversion of passive cellulose paper into laser-induced graphite (PLIG), allowing for the fabrication of conductive pathways and various electronic components with customized geometries on a single sheet of paper, a process termed laser-induced papertronics. Microfluidic channels were then successfully patterned by hot-pressing hydrophobic Parafilm into hydrophilic cellulose paper (paper-para) at a low temperature (60 °C) for just 15 s, achieving a submillimeter resolution of ∼0.45 mm. The resulting paper-para demonstrated compatibility with a wide range of aqueous solutions and organic solvents. This process facilitates the seamless integration of laser-induced papertronics with Parafilm-based microfluidics on a single monolithic paper sheet, denoted microfluidic PLIG (μPLIG), preserving both the structural integrity and electrochemical performance of the papertronics as well as the fluidic character of the Parafilm-based paper microfluidics. Demonstrative applications include pH sensing with a sensitivity of −40.3 mV pH–1, lactate biosensing with a sensitivity of 0.92 μA mM–1, and Vitamin D3 detection in ethanol mixtures exhibiting a linear range of 5–65 μM, indicating the platform’s compatibility and versatility for sensor applications in both aqueous and organic systems. This study establishes a foundation for a uniquely integrated, cost-effective, and environmentally friendly electroanalytical platform, μPLIG, uniting paper-based LIG electronics and Parafilm-based microfluidics on a single disposable substrate.

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来源期刊
ACS Applied Materials & Interfaces
ACS Applied Materials & Interfaces 工程技术-材料科学:综合
CiteScore
16.00
自引率
6.30%
发文量
4978
审稿时长
1.8 months
期刊介绍: ACS Applied Materials & Interfaces is a leading interdisciplinary journal that brings together chemists, engineers, physicists, and biologists to explore the development and utilization of newly-discovered materials and interfacial processes for specific applications. Our journal has experienced remarkable growth since its establishment in 2009, both in terms of the number of articles published and the impact of the research showcased. We are proud to foster a truly global community, with the majority of published articles originating from outside the United States, reflecting the rapid growth of applied research worldwide.
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