1
Return

Yield stress fluids in microfluidics: research, applications and opportunities

delete2026-05-01
delete0
delete
OA
AI
H
H. Rahmani
T
Taghavi, Seyed Mohammad *
DOI:10.1039/d5lc00864fdelete
deleteOriginal
deleteOriginal request for help
deleteShare
deleteSave
Abstract

Abstract

En 中文
Microfluidic technology enables scalable solutions in precision medicine, diagnostics, drug delivery, organ-on-a-chip models, single-cell analysis, high-throughput screening, and environmental monitoring. In fact, many of these applications process fluids with complex rheology, e.g., blood, mucus, bioinks, and polymer or particle suspensions, exhibiting yield stress, viscoelasticity, and shear-thinning that govern transport, mixing, and interfacial dynamics at small scales. However, the interplay of such rheology with microscale confinement, roughness, and surface patterning remains underexplored. In this review, we highlight microfluidic applications where yield stress (and related rheological) properties are pivotal. For instance, we discuss how blood rheology shapes the design of devices for circulating tumor cell separation, and how bioink viscoelasticity balances flowability and shape fidelity in extrusion and embedded bioprinting. We also examine electrorheological fluids as field-tunable media for microvalves, pumps, and mixers, and analyze microorganism and microrobot locomotion in complex fluids, linking physics to biology and targeted delivery. We further consider microscale slip, microrheology platforms, and viscous fingering instabilities, to specifically highlight how rheology controls transport and enables fabrication of channels and hydrogel structures. We conclude that yield-stress (and viscoelastic) effects are not mere complications but they are powerful design variables, and we outline future opportunities for leveraging these properties to advance microfluidic science and technology.
Keywords:
CIRCULATING TUMOR-CELLS
ON-A-CHIP
ELECTROWETTING-BASED ACTUATION
MONODISPERSE DOUBLE EMULSIONS
LABEL-FREE ISOLATION
HUMAN BLOOD
DIGITAL MICROFLUIDICS
NUMERICAL-SIMULATION
ACTIVE MICRORHEOLOGY
ULTRA-FAST

Journal

L
Lab on a Chip
IF:
5.4
Papers:
9.0K
Citations:
3.3W

Organization

L
laval university
Scholars:
2.5W
Papers: 2.2W
Citations: 96
U
University of British Columbia
Scholars:
6.8W
Papers: 6.1W
Citations: 8.6W
Cited Papers

Cited Papers

Citing Papers

Citing Papers