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Polymers02:34

Polymers

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The word polymer is derived from the Greek words “poly” which means “many” and “mer” which means “parts”. Polymers are long chains of molecules composed of repeating units of smaller molecules, known as monomers. They either occur naturally, such as DNA and proteins, or can be constructed synthetically, like plastics. They have varied structural characteristics, such as linear chains, branched chains, or complex networks, that contribute to the...
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Polymers02:34

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Polymer Classification: Architecture01:14

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Polymers are classified as linear or branched on the basis of their chain architecture. The polymer chains in linear polymers have a long chain-like structure with minimal to no branching at all. Even if a polymer features large substituent groups on the monomer, which appear as branches to the skeleton, it is not considered a branched polymer. A branched polymer contains secondary polymer chains that arise from the main polymer chain. The branching occurs when the polymer growth shifts from...
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Polymer Classification: Crystallinity01:21

Polymer Classification: Crystallinity

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Unlike ionic or small covalent molecules, polymers do not form crystalline solids due to the diffusion limitations of their long-chain structures. However, polymers contain microscopic crystalline domains separated by amorphous domains.
Crystalline domains are the regions where polymer chains are aligned in an orderly manner and held together in proximity by intermolecular forces. For example, chains in the crystalline domains of polyethylene and nylon are bound together by van der Waals...
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Polymer Classification: Stereospecificity01:26

Polymer Classification: Stereospecificity

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Polymerization generates chiral centers along the entire backbone of a polymer chain. Accordingly, the stereochemistry of the substituent group has a significant effect on polymer properties. Polymers formed from monosubstituted alkene monomers feature chiral carbons at every alternate position in the polymer backbone. Relative to the predominant orientation of substituents at the adjacent chiral carbons, the polymer can exist in three different configurations: isotactic, syndiotactic, and...
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Updated: Jan 25, 2026

Using Micro-Electro-Mechanical Systems MEMS to Develop Diagnostic Tools
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Engineering polymer MEMS using combined microfluidic pervaporation and micro-molding.

Damien Thuau1, Cédric Laval2, Isabelle Dufour1

  • 11Laboratoire IMS, University of Bordeaux, UMR 5218, ENSCBP, 16 avenue Pey Berland, 33607 Pessac, France.

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Researchers developed a new microfabrication technique for creating complex polymer micro-electro-mechanical systems (MEMS). This versatile method enables multilayer structures for advanced flexible electronics and sensing applications.

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Area of Science:

  • Materials Science
  • Microtechnology
  • Polymer Science

Background:

  • The demand for flexible and wearable electronics is rapidly increasing.
  • Polymer micro-electro-mechanical systems (MEMS) are crucial for sensing in flexible electronics.
  • Current polymer micromachining techniques lag behind silicon-based methods, necessitating innovation.

Purpose of the Study:

  • To introduce a novel, versatile microfabrication method for organic, multilayer micro-structures.
  • To demonstrate the fabrication and application of polymer MEMS devices using this new technique.
  • To advance the integration of polymers in micro-electro-mechanical systems.

Main Methods:

  • Extension of microfluidic pervaporation combined with Micro-Molding In Capillaries (MIMC).
  • Fabrication of arbitrary organic, spatially resolved multilayer micro-structures from dilute inks.
  • Utilized a variety of materials for micro-structure fabrication.

Main Results:

  • Successfully fabricated bilayer polymer double-clamped resonators with integrated piezoresistive readout.
  • Characterized the fabricated polymer MEMS devices.
  • Demonstrated the application of these devices for humidity sensing.

Conclusions:

  • The developed microfabrication technique is versatile and effective for creating complex polymer micro-structures.
  • This method opens new avenues for the design and integration of polymers in MEMS.
  • The fabricated polymer MEMS show promise for sensing applications in flexible electronics.