| name | microfluidics |
| description | Microfluidics — low Reynolds number flow (Re << 1, Stokes flow), capillary number, Hele-Shaw flow, electroosmotic flow (zeta potential, Debye length), pressure-driven Poiseuille flow in microchannels, droplet microfluidics (T-junction, flow-focusing), lab-on-chip fabrication (PDMS soft lithography, silicon MEMS), diffusion-dominated mixing (Péclet number), and biomedical applications (PCR chip, cell sorting, diagnostics). |
| metadata | {"priority":7,"promptSignals":{"phrases":["microfluidics","lab on chip","microchannel flow","electroosmotic flow","droplet microfluidics","Hele-Shaw"],"minScore":3}} |
Microfluidics — Complete Skill
Dimensionless Numbers at Micro-Scale
Reynolds Number
Reynolds number:
Re = ρ × v × D_h / μ [D_h = hydraulic diameter; v = mean velocity]
In microchannels: D_h = 10–500 μm; v = 0.1–100 mm/s; typical Re = 0.001–10
Consequence: completely laminar flow (Re << 2300); no turbulence; predictable, controllable
Stokes flow (Re << 1):
Inertia terms neglected: ∇p = μ∇²v [Stokes equation; instantaneous response; reversible flow]
Important: mixing ONLY by diffusion (no turbulent mixing); channels must be specifically designed for mixing
Capillary Number
Capillary number (viscous vs. surface tension):
Ca = μ × v / γ [μ = viscosity; v = flow velocity; γ = interfacial tension]
Ca << 1: surface tension dominated → droplets remain spherical
Ca >> 1: viscous forces dominate → droplet deformation, Rayleigh-Plateau instability
Typical droplet microfluidics: Ca = 0.001–0.1
Péclet Number (Diffusion vs. Convection)
Péclet number:
Pe = v × L / D_diff [D_diff = molecular diffusion coefficient; L = channel length]
Pe >> 1: convection dominates → species carried without mixing (parallel laminar streams)
Pe << 1: diffusion dominates → complete mixing → desirable for analysis chips at short length scales
D_diff for small molecules in water: ~10⁻⁹ m²/s; large protein: ~10⁻¹¹ m²/s
Diffusion mixing length:
L_mix = v × w² / D_diff [w = channel width; time for diffusion across channel: t = w²/(2D) → L = v×t]
Example: v = 1 mm/s; w = 100 μm; D = 10⁻⁹ m²/s → L_mix = 0.001 × (100×10⁻⁶)² / 10⁻⁹ = 10 mm
Pressure-Driven Flow (Poiseuille)
Rectangular Microchannel
Hagen-Poiseuille (circular tube):
Q = π × R⁴ × ΔP / (8 × μ × L) [Q = volumetric flow rate; R = radius; ΔP = pressure drop; L = length]
v_max = R² × ΔP / (4μL) [centerline velocity; parabolic profile]
Rectangular channel (w × h, h < w):
Q ≈ h³ × w × ΔP / (12 × μ × L) × [1 − (192h/π⁵w) × Σ tanh(nπw/(2h))/n⁵] [exact series]
Simplified for h << w (thin slit): Q ≈ h³ × w × ΔP / (12 × μ × L)
Hydraulic resistance analogy (circuit analog):
R_h = ΔP / Q = 12 μL / (h³w) for thin rectangular channel
Series channels: R_total = Σ R_i; Parallel: 1/R_total = Σ 1/R_i [exact circuit analogy for Stokes flow]
Example:
Channel: 100 μm wide × 50 μm high × 10 mm long; water (μ = 10⁻³ Pa·s); ΔP = 1000 Pa
Q ≈ (50×10⁻⁶)³ × (100×10⁻⁶) × 1000 / (12 × 10⁻³ × 10×10⁻³)
= (1.25×10⁻¹³ × 10⁻⁴ × 10³) / (1.2×10⁻⁴) = 1.25×10⁻¹⁴ / 1.2×10⁻⁴ = 1.04×10⁻¹⁰ m³/s = 0.104 nL/s ≈ 6.2 nL/min
Hele-Shaw Flow
Hele-Shaw cell: flow between two closely-spaced parallel plates (h << w)
Velocity field is 2D potential flow (depth-averaged): ∇²p = 0 [irrotational in plan view]
Streamlines follow conformal mapping patterns → used for flow visualization + analog for 2D potential problems
Application: microfluidic channels designed in plan view; predicts flow splitting, junction behavior
Electrokinetic Flow
Electroosmotic Flow (EOF)
Zeta potential (ζ): surface potential at shear plane; depends on surface chemistry + electrolyte
PDMS in aqueous buffer: ζ ≈ −30 to −50 mV at pH 7.4 (negative; attracts positive counterions)
Glass (SiO₂): ζ ≈ −50 to −100 mV at pH 7 (strong EOF)
Debye screening length (κ⁻¹):
κ⁻¹ = √(ε₀εkT / (2n₀e²z²)) [ε = permittivity; k_B = Boltzmann constant; n₀ = ion concentration; z = valence]
At 10 mM NaCl: κ⁻¹ ≈ 3 nm (thin diffuse layer; most of channel is bulk)
At 1 mM: κ⁻¹ ≈ 10 nm
Electroosmotic velocity (Helmholtz-Smoluchowski):
v_EOF = −(ε₀ε × ζ / μ) × E [E = electric field V/m; ε₀ = 8.85×10⁻¹² F/m; ε_water = 80; μ = viscosity]
For PDMS: v_EOF ≈ −(80×8.85×10⁻¹²×(−40×10⁻³) / 10⁻³) × E = 28.3×10⁻⁹ × E [m/s per V/m]
At E = 10,000 V/m (10 V/cm): v_EOF ≈ 0.28 mm/s
EOF velocity profile: plug flow (flat profile; unlike Poiseuille parabola) → no Taylor dispersion band broadening → ideal for separation
Used in: capillary electrophoresis (CE), electrophoretic separations, electroosmotic pumps
Electrophoresis:
Charged species: v_ep = μ_ep × E [μ_ep = electrophoretic mobility = q×ζ_particle/(6πηR)]
Net velocity = v_EOF + v_ep; separation based on charge/size → DNA, protein analysis
Droplet Microfluidics
Generation Methods
T-junction geometry:
Continuous phase (oil) flows in main channel; dispersed phase (aqueous) flows in side channel
At junction: aqueous neck pinches off → monodisperse droplets
Droplet size: d ≈ 1.5 × w_side × (μ_c Q_c / (γ Q_d))^n [Ca-dependent; n ≈ 0.3–0.5]
Monodispersity: CV (coefficient of variation) < 2% achievable
Flow-focusing geometry:
Aqueous phase squeezed by two symmetric oil streams → focused thread → breaks into droplets at orifice
Better control of droplet size; works over wider Ca range; typical research platform
Droplet applications:
Digital PCR (100,000 droplets/sample → single molecule sensitivity)
Drug screening (each droplet = one experiment; 1,000–10,000 droplets/s)
Cell encapsulation (Poisson statistics → ~1 cell per droplet at λ = 0.3)
Fabrication — Soft Lithography (PDMS)
PDMS Molding Process
PDMS (polydimethylsiloxane) — dominant microfluidics material:
Optical transparency, biocompatible, gas permeable, easy molding, bond to glass by plasma
Process steps:
- Master fabrication: SU-8 photoresist on silicon wafer; UV exposure through mask; develop → raised features = channel mold
SU-8 thickness → channel height h; typically 10–200 μm
- PDMS casting: mix Sylgard 184 base + curing agent 10:1 by mass; degas; pour over master; cure 65°C/1h
- Peel: remove cured PDMS slab; punch inlet/outlet holes with biopsy punch
- Bonding: plasma activate PDMS + glass slide (O₂ plasma 30 s); bring into contact → irreversible bond
Bond strength: > 500 kPa (sufficient for most microfluidic pressures)
- Test: fill with fluid; connect tubing; verify sealing
PDMS limitations:
Absorbs small hydrophobic molecules (loss of drug candidates → misleading screens)
Permeable to CO₂, O₂ (good for cell culture; bad for anaerobic studies)
Not suitable for organic solvents → use cyclic olefin copolymer (COC), PMMA, or glass for harsh chemistry
Silicon/Glass MEMS
Silicon microfabrication:
Deep Reactive Ion Etching (DRIE — Bosch process): vertical sidewalls; aspect ratio 20:1; etch rate 5–10 μm/min
Anodic bonding (Si + Pyrex at 400°C, 1 kV): hermetic; high-pressure seal; for harsh chemical/high-T
Used: flow cytometry chips, high-pressure microreactors, BioMEMS pressure sensors
Biomedical Applications
Lab-on-Chip Functions
PCR (Polymerase Chain Reaction) on chip:
30 thermal cycles; T = 95°C (denature) / 55°C (anneal) / 72°C (extend) each 5–20 s
On-chip: thin silicon with TEC heaters; 30 cycles in 5–20 min (vs. 2 h conventional bench PCR)
Volume: 10–100 nL (vs. 50 μL conventional) → 500× less reagent cost
Cell sorting (microfluidic FACS):
Electrokinetic deflection or acoustic focusing; sort rate: 1000–10,000 cells/s
Deterministic lateral displacement (DLD) arrays: sort by size without label; for CTC isolation
Diagnostics (point-of-care):
Lateral flow immunoassay: paper microfluidics; gold nanoparticle detection; COVID/flu test strips
Fully integrated LOC: sample-in/answer-out; blood → pathogen identification in 30 min
Standards and References
| Standard | Scope |
|---|
| ISO 22916 | Microfluidics — interoperability requirements for chip-to-chip and chip-to-world interfaces |
| SEMI F119 | Specification for microfluidic systems |
| ASTM E2652 | Nanomaterial safety testing (nanofluidics adjacent) |
| ISO 10993 | Biocompatibility of medical devices (PDMS LOC devices) |
| IEEE MEMS standards | MEMS device characterization |
Output
Provide: application (LOC type: PCR/mixing/droplet generation/sorting/filtration; fluid: aqueous/organic; target throughput [nL/min]; required resolution), dimensionless analysis (Re = ρvD/μ [confirm laminar]; Pe = vL/D [mixing regime]; Ca = μv/γ [droplet stability]; Bo = ρgL²/γ [gravity negligible if Bo < 1]), channel geometry (w [μm]; h [μm]; L [mm]; D_h = 2wh/(w+h) [μm]; material: PDMS/glass/COC/Si), pressure-driven flow (Q [nL/min]; ΔP = 12μLQ/(h³w) [Pa]; pump type: syringe/peristaltic/electroosmotic; pressure rating), electrokinetic (if EOF: E [V/m]; ζ [mV]; v_EOF = ε₀ε×ζ×E/μ [mm/s]; Debye length [nm]; band dispersion Pe effect), droplet generation (if applicable: T-junction or flow-focus; Q_continuous [nL/min]; Q_dispersed [nL/min]; Ca; droplet size d [μm]; frequency [Hz]; CV [%]), fabrication route (PDMS soft lithography: SU-8 master h [μm], plasma bonding; or silicon DRIE: aspect ratio; anodic bonding), and applicable standard (ISO 22916 for chip interfaces; ISO 10993 for biocompatibility if medical device).