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Highly Thermally Conductive PDMS/h-BN Composites Enabled by Aspect-Ratio-Driven Alignment.

Mi-Ri An1, Ji-Yoon Ahn1, Eun-Taek Hor1

  • 1Department of Mechanical Engineering, Soongsil University, 369 Sangdo-ro, Dongjak-Gu, Seoul 06978, Republic of Korea.

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Summary

Platelet aspect ratio significantly impacts heat transport in hexagonal boron nitride (h-BN) composites. High-aspect-ratio h-BN platelets enable better alignment and enhanced thermal conductivity for advanced materials.

Keywords:
alignmentaspect ratioboron nitridepolymer compositethermal management materials

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Area of Science:

  • Materials Science
  • Polymer Composites
  • Nanomaterials

Background:

  • Hexagonal boron nitride (h-BN) platelets are used in electrically insulating thermal management materials.
  • Scalable processing methods for aligning h-BN are crucial for high performance.
  • The influence of filler geometry on alignment and thermal transport under shear is not well understood.

Purpose of the Study:

  • To investigate how platelet aspect ratio affects the alignment and heat transport in polydimethylsiloxane (PDMS)/h-BN composites.
  • To understand the role of filler geometry in shear-induced alignment during processing.

Main Methods:

  • Sequential roll-gap controlled two-roll milling was used to process PDMS/h-BN composites.
  • A geometric moment-arm perspective was employed to analyze shear-driven rotation.
  • Composites with high-aspect-ratio (L-BN) and small (S-BN) platelets were compared.

Main Results:

  • High-aspect-ratio L-BN platelets showed more stable flow-parallel alignment compared to S-BN.
  • Aligned L-BN composites formed a more interconnected conductive network.
  • At 175 wt% loading, aligned L-BN composites achieved a thermal conductivity of 10.3 W m-1 K-1, a 94% increase over random counterparts.
  • L-BN composites demonstrated superior thermal dissipation and improved stiffness.

Conclusions:

  • Platelet aspect ratio is a critical design parameter for achieving efficient alignment in h-BN/polymer composites.
  • Optimizing aspect ratio enables enhanced thermal management properties in scalable composite materials.
  • This work provides a pathway for designing high-performance, electrically insulating thermal materials.