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Stretchable and Lithography-Compatible Interconnects Enabled by Self-Assembled Nanofilms with Interlocking Interfaces. | LitMetric

AI Article Synopsis

  • Stretchable interconnects are essential for integrating flexible electronic components on a single substrate, but achieving high resolution and durability in their production remains a challenge.
  • The researchers developed a self-assembled silver nanofilm interlocked with an elastomeric nanodielectric, allowing for photolithographic patterning while maintaining high stretchability (around 200%) and conductivity without the need for thermal annealing.
  • They found that narrower silver microstrips (100 μm) show enhanced stretchability, but further scaling leads to crack issues; using serpentine designs can minimize resistance changes, and these interconnects can power LEDs as an example application.

Article Abstract

Stretchable interconnects with miniature widths are vital for the high-density integration of deformable electronic components on a single substrate for targeted data logic or storage functions. However, it is still challenging to attain high-resolution patternability of stretchable conductors with robust circuit fabrication capability. Here, we report a self-assembled silver nanofilm firmly interlocked by an elastomeric nanodielectric that can be photolithographically patterned into microscale features while preserving high stretchability and conductivity. Both silver and dielectric nanofilms are fabricated by layer-by-layer assembly, ensuring wafer-scale uniformity and meticulous control of thicknesses. Without any thermal annealing, the as-fabricated nanofilms from silver nanoparticles (AgNPs) exhibit conductivity of 1.54 × 10 S m and stretchability of ∼200%, which is due to the impeded crack propagation by the underlying PU nanodielectrics. Furthermore, it is revealed that AgNP microstrips defined by photolithography show higher stretchability when their widths are downscaled to 100 μm owing to confined cracks. However, further scaling restricts the stretchability, following the early development of cracks cutting across the strip. In addition, the resistance change of these silver interconnects can be decreased using serpentine architectures. As a demonstration, these self-assembled interconnects are used as stretchable circuit boards to power LEDs.

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Source
http://dx.doi.org/10.1021/acsami.3c11760DOI Listing

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