A brief overview of passive microvalves in microfluidics: Mechanism, manufacturing, and applications

IF 2.6 4区 工程技术 Q2 BIOCHEMICAL RESEARCH METHODS Biomicrofluidics Pub Date : 2024-04-22 DOI:10.1063/5.0188807
Bin Li, Ludan Zhang, Siwei Bai, Jing Jin, Huaying Chen
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Abstract

Microvalves play a crucial role in manipulating fluid states within a microfluidic system and are finding widespread applications in fields such as biology, medicine, and environmental preservation. Leveraging the characteristics and features of microvalves enables the realization of various complicated microfluidic functions. Continuous advancement in the manufacturing process contributes to more flexible control modes for passive microvalves. As a consequence, these valves are progressively shrinking in size while simultaneously improving in precision and stability. Although active microvalves have the benefits of low leakage, rapid response time, and wide adaptability range, the energy supply system limits the size and even their applicability in integration and miniaturization. In comparison, passive microvalves have the advantage of relying solely on the fluid flow or fluid driving pressure to control the open/close of fluid flow over active microvalves, in spite of having slightly reduced control accuracy. Their self-sustaining feature is highly consistent with the need for assembly and miniaturization in the point-of-care testing technology. Hence, these valves have attracted significant interest for research and application purposes. This review focuses on the recent literature on passive microvalves and details existing passive microvalves from three different aspects: operating principle, processing method, and applications. This work aims to increase the visibility of passive microvalves among researchers and enhance their comprehension by classifying them according to the aforementioned three aspects, facilitating the practical applications and further developments of passive microvalves. Additionally, this paper is expected to serve as a comprehensive and systematic reference for interdisciplinary researchers that intend to design related microfluidic systems.
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微流体中的无源微阀概述:机理、制造和应用
微阀在操纵微流体系统内的流体状态方面发挥着至关重要的作用,并在生物、医学和环境保护等领域得到广泛应用。利用微阀的特性和功能可以实现各种复杂的微流体功能。制造工艺的不断进步为无源微阀提供了更灵活的控制模式。因此,这些阀门在逐渐缩小尺寸的同时,精度和稳定性也在不断提高。虽然有源微阀具有泄漏率低、响应速度快、适应范围广等优点,但能源供应系统限制了它们的尺寸,甚至限制了它们在集成和微型化方面的应用。相比之下,无源微阀的优势在于完全依靠流体流量或流体驱动压力来控制流体流量的开/关,尽管控制精度略有降低。它们的自持特性与床旁检测技术对装配和微型化的需求高度一致。因此,这些阀门在研究和应用方面引起了极大的兴趣。本综述重点关注近期有关无源微阀的文献,并从工作原理、加工方法和应用三个不同方面详细介绍了现有的无源微阀。这项工作旨在提高无源微阀在研究人员中的知名度,并通过按照上述三个方面对无源微阀进行分类来加深对无源微阀的理解,从而促进无源微阀的实际应用和进一步发展。此外,本文有望为有意设计相关微流控系统的跨学科研究人员提供全面系统的参考。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Biomicrofluidics
Biomicrofluidics 生物-纳米科技
CiteScore
5.80
自引率
3.10%
发文量
68
审稿时长
1.3 months
期刊介绍: Biomicrofluidics (BMF) is an online-only journal published by AIP Publishing to rapidly disseminate research in fundamental physicochemical mechanisms associated with microfluidic and nanofluidic phenomena. BMF also publishes research in unique microfluidic and nanofluidic techniques for diagnostic, medical, biological, pharmaceutical, environmental, and chemical applications. BMF offers quick publication, multimedia capability, and worldwide circulation among academic, national, and industrial laboratories. With a primary focus on high-quality original research articles, BMF also organizes special sections that help explain and define specific challenges unique to the interdisciplinary field of biomicrofluidics. Microfluidic and nanofluidic actuation (electrokinetics, acoustofluidics, optofluidics, capillary) Liquid Biopsy (microRNA profiling, circulating tumor cell isolation, exosome isolation, circulating tumor DNA quantification) Cell sorting, manipulation, and transfection (di/electrophoresis, magnetic beads, optical traps, electroporation) Molecular Separation and Concentration (isotachophoresis, concentration polarization, di/electrophoresis, magnetic beads, nanoparticles) Cell culture and analysis(single cell assays, stimuli response, stem cell transfection) Genomic and proteomic analysis (rapid gene sequencing, DNA/protein/carbohydrate arrays) Biosensors (immuno-assay, nucleic acid fluorescent assay, colorimetric assay, enzyme amplification, plasmonic and Raman nano-reporter, molecular beacon, FRET, aptamer, nanopore, optical fibers) Biophysical transport and characterization (DNA, single protein, ion channel and membrane dynamics, cell motility and communication mechanisms, electrophysiology, patch clamping). Etc...
期刊最新文献
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