Login / Signup

Computationally Informed Design of a Multi-Axial Actuated Microfluidic Chip Device.

Alessio GizziSara Maria GiannitelliMarcella TrombettaChristian CherubiniSimonetta FilippiAdele De NinnoLuca BusinaroAnnamaria GerardinoAlberto Rainer
Published in: Scientific reports (2017)
This paper describes the computationally informed design and experimental validation of a microfluidic chip device with multi-axial stretching capabilities. The device, based on PDMS soft-lithography, consisted of a thin porous membrane, mounted between two fluidic compartments, and tensioned via a set of vacuum-driven actuators. A finite element analysis solver implementing a set of different nonlinear elastic and hyperelastic material models was used to drive the design and optimization of chip geometry and to investigate the resulting deformation patterns under multi-axial loading. Computational results were cross-validated by experimental testing of prototypal devices featuring the in silico optimized geometry. The proposed methodology represents a suite of computationally handy simulation tools that might find application in the design and in silico mechanical characterization of a wide range of stretchable microfluidic devices.
Keyphrases
  • circulating tumor cells
  • high throughput
  • single cell
  • molecular docking
  • label free
  • quality improvement
  • molecular dynamics simulations
  • metal organic framework