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March 21, 2026Macromolecules0 citations

Advancing Green Stretchable Electronics with Solvent-Free Melt-Processed Semiconducting Blends

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PKPiumi KulatungaUniversity of WindsorASAlyssa ShawIntegrated Optoelectronics (Norway)MCMike ChangUniversity of British Columbia

Key Points

  • To develop a solvent-free processing method for stretchable organic field-effect transistors (OFETs) using melt-processed semiconducting blends.
  • Fabrication of stretchable OFETs through melt processing of diketopyrrolopyrrole-based polymer and SEBS blends
  • Characterization of films to compare solvent-processed and melt-processed techniques
  • Tensile testing to assess mechanical properties
  • Rheological measurements to evaluate processing behavior of blends
  • Melt-processed films showed comparable charge carrier mobilities to solvent-processed blends
  • Increasing SEBS content reduced Young's modulus, enhancing flexibility
  • Rheological studies indicated improved shear-thinning behavior with high SEBS loadings

Abstract

The development of solvent-free processing routes is essential for advancing sustainable manufacturing in soft electronics. Here, we introduce a melt-processable strategy for fabricating stretchable OFETs based on the physical blending of a low-melting point diketopyrrolopyrrole-based polymer and SEBS. Blends prepared across a wide compositional range were characterized to compare solvent-processed and melt-processed films. Materials characterization in the solid state revealed predominantly amorphous morphologies with composition-dependent differences in nanoscale organization. Free-standing tensile testing demonstrated a systematic decrease in Young’s modulus with increasing SEBS content, confirming enhanced flexibility. Rheological measurements further showed pronounced shear-thinning behavior at high SEBS loadings, advantageous for extrusion-based fabrication and compatible with both melt processing and traditional solution-based methods. Notably, organic field-effect transistors fabricated from melt-processed films exhibited charge carrier mobilities comparable to, and in some cases exceeding, those from solvent-processed blends, with stable performance maintained across diverse compositions. Overall, this work presents a sustainable, solvent-free approach to producing stretchable semiconducting films with tunable mechanical properties and robust electronic performance, offering a versatile platform for soft and stretchable electronic devices.

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Cite This Study

Kulatunga et al. (2026) studied this question.

synapsesocial.com/papers/69be35166e48c4981c67328dhttps://doi.org/10.1021/acs.macromol.6c00003
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