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Updated: Jul 15, 2026

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Using Adhesive Patterning to Construct 3D Paper Microfluidic Devices
Published on: April 1, 2016
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Research progress on the applications of paper chips
Xin Tong1, Lu Ga2, Ruiguo Zhao3
1College of Chemistry and Enviromental Science, Inner Mongolia Key Laboratory of Green Catalysis, Inner Mongolia Normal University 81 zhaowudalu Hohhot 010022 China imacaj01@163.com.
RSC Advances
|April 15, 2022
Summary
This study reviews paper-based microfluidic chips (μPADs), highlighting their development, fabrication, detection, and applications. It aims to provide a comprehensive understanding and discuss future prospects for these analytical technology tools.
Area of Science:
- Analytical Chemistry
- Materials Science
- Biotechnology
Background:
- Modern quality of life pursuits drive demand for advanced analytical detection methods.
- Rapid advancements in science and technology necessitate improved analytical techniques.
- Paper-based microfluidic devices offer a promising platform for diverse applications.
Purpose of the Study:
- To summarize the development, fabrication, detection, and application of paper-based microfluidic chips (μPADs).
- To provide a comprehensive understanding of the current state of paper chip technology.
- To discuss the challenges and future prospects in the field of μPADs.
Main Methods:
- Literature review and synthesis of existing research on paper-based microfluidic chips.
- Analysis of fabrication techniques for μPADs.
- Evaluation of detection methodologies employed with μPADs.
- Exploration of diverse application areas for paper-based analytical devices.
Main Results:
- Paper-based microfluidic chips have demonstrated versatility in various analytical applications.
- Established fabrication methods allow for cost-effective and accessible μPAD production.
- Diverse detection strategies are compatible with paper-based platforms.
- Significant progress has been made in the development and application of μPADs.
Conclusions:
- Paper-based microfluidic chips represent a rapidly evolving field with substantial potential.
- Further research is needed to address existing challenges and unlock new applications.
- Future prospects include enhanced sensitivity, multiplexing capabilities, and integration with portable devices.

