Microstructure Fabrication

Microstructure fabrication is the controlled creation of small-scale features and architectures in materials, often to tailor their physical, chemical, electrical, or mechanical behavior. Engineers typically form a patterned layer using lithography or another masking method, then transfer that pattern through deposition, etching, machining, or selective material removal. This approach can produce channels, sensors, electronic structures, and functional surfaces with dimensions ranging from micrometers to nanometers. Microstructure fabrication underpins microfluidics, electronic and photonic devices, biomedical tools, and advanced materials, while precise process control determines feature fidelity, reproducibility, and performance.

Microstructure Fabrication - Related Videos

Research

JoVE Journal - Engineering

Fabrication, Densification, and Replica Molding of 3D Carbon Nanotube Microstructures

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Cited by 7 •

2012

We present methods for fabrication of patterned microstructures of vertically aligned carbon nanotubes (CNTs), and their use as master molds for production of polymer microstructures with organized nanoscale surface texture. The CNT forests are densified by condensation of solvent onto the substrate, which significantly increases their packing density and enables self-directed formation of 3D shapes.

Improved Polydimethylsiloxane (PDMS) Double Casting via Silicone Oil Treatment for Densely Packed Microstructure Replication

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2025

This protocol presents an improved demolding procedure for the Polydimethylsiloxane (PDMS) double casting technique by introducing silicone oil as a non-adhesive barrier between PDMS layers. Unlike plasma or chemical surface modification methods, this approach requires no specialized or costly equipment, making it a more accessible and cost-effective alternative.

Measuring Material Microstructure Under Flow Using 1-2 Plane Flow-Small Angle Neutron Scattering

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Cited by 27 •

2014

A shear cell is developed for small-angle neutron scattering measurements in the velocity-velocity gradient plane of shear and is used to characterize complex fluids. Spatially resolved measurements in the velocity gradient direction are possible for studying shear-banding materials. Applications include investigations of colloidal dispersions, polymer solutions, and self-assembled structures.

Process of Making Three-dimensional Microstructures using Vaporization of a Sacrificial Component

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Cited by 7 •

2013

The Vaporization of a Sacrificial Component (VaSC) process is used to fabricate microvascular structures. This procedure uses sacrificial poly(lactic) acid fibers to form hollow microchannels with precise 3D geometric positioning provided by laser micromachined guide plates.

Research

JoVE Journal - Chemistry
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Manufacturing of Three-dimensionally Microstructured Nanocomposites through Microfluidic Infiltration

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Cited by 4 •

2014

Three-dimensional (3D) microstructured composite beams are fabricated through the directed and localized infiltration of nanocomposites into 3D porous microfluidic networks. The flexibility of this manufacturing method enables the utilization of different thermosetting materials and nanofillers in order to achieve a variety of functional 3D reinforced nanocomposite macroscopic products.

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