0
Article Tier 2 Policy & Risk Sign in to save

Design advances in pinched flow fractionation for enhanced particle separation in microfluidics

Lab on a Chip 2025 5 citations

AI summary Read the abstract

This review summarizes design advances in pinched flow fractionation, a microfluidic technique for particle separation with applications including microplastic detection in water quality evaluation. The researchers categorize innovations into five strategies and discuss how these advances have expanded the technique from purely size-based to shape- and density-based separations with enhanced throughput.

Body Systems

Pinched flow fractionation (PFF) is a simple, biocompatible microfluidic technique for particle separation, well-suited for applications requiring easy design, ease of operation, and gentle sample handling. In this review, we systematically summarize design advances in PFF, categorizing innovations into five core strategies: broadened segment optimization, pinched segment modification, outlet design refinement, active method integration, and passive hybridization. Both the optimized designs and their underlying working mechanisms are elucidated. While PFF inherently operates as a size-based separation method, these developments have expanded its applicability to shape- and density-based separations. Key performance enhancements are highlighted, e.g., modifications to the pinched and broadened segments increase separation distance, microvalve-integrated outlets enable real-time control, active method integration improves separation resolution, and inertial microfluidic hybridization enhances throughput. Besides, we review representative applications of PFF, like the separation of extracellular vesicles for immunoblotting and microplastics for water quality evaluation. Design guidelines promoting the separation performance are discussed, alongside potential biological particle targets and a comparative analysis of PFF and other separation techniques. Finally, future directions are proposed, emphasizing the integration of passive methods and device parallelization to maintain PFF's simplicity while improving throughput and separation capabilities. This review aims to provide theoretical insights and technical guidance for continuous innovation in PFF, promoting its practical implementation across biomedical and environmental monitoring fields.

More Papers Like This

Article Tier 2

Review: Impact of microfluidic cell and particle separation techniques on microplastic removal strategies

AI summary Read the abstract

Researchers reviewed how microfluidic technology — the same miniaturized tools used in medical diagnostics to sort cells — could be adapted to separate and recover microplastics from water, offering a more precise and scalable alternative to conventional filtration methods used in wastewater treatment.

Article Tier 2

A microfluidic device for size-based microplastics and microalgae separation

AI summary Read the abstract

Researchers designed a microfluidic device that separates microplastics and microalgae by size using controlled flow patterns. The device could be used to isolate microplastics from complex environmental water samples containing biological material, improving the accuracy of microplastic monitoring.

Article Tier 2

Centrifugal microfluidic chip for multi-stage sorting and detection of microplastics at micron scale

AI summary Read the abstract

Researchers developed a centrifugal microfluidic chip that can sort and detect microplastics smaller than 63 micrometers by separating them into different size groups based on spinning forces. The chip achieved about 87% capture rate for polystyrene microspheres and also worked well with irregularly shaped microplastics. This technology offers a faster, more accurate, and simpler alternative to traditional membrane filtration for analyzing tiny microplastics in environmental samples.

Article Tier 2

Focusing, sorting, and separating microplastics by serial faradaic ion concentration polarization

AI summary Read the abstract

Researchers demonstrated a microfluidic technique that uses electric fields to continuously separate two types of microplastic particles in flowing water. This lab-on-chip approach could be developed into tools for monitoring or removing specific microplastic types from water treatment systems.

Article Tier 2

Optimising miniaturised hydrocyclones for enhanced separation of microplastics

AI summary Read the abstract

Researchers optimized the design of miniaturized hydrocyclones for separating small microplastics in the 5-20 micrometer range from water. Using computational fluid dynamics simulations, they identified optimal inlet geometry and flow conditions that significantly improved particle separation efficiency. The study demonstrates that mini-hydrocyclones could serve as a compact and energy-efficient technology for removing very small microplastics from water treatment systems.

Research digests by email

When a large batch of papers lands in the Atlas, we read through it and send a short write-up of what stood out.

Email me about

Share this paper