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February 21, 2026Materials & Design0 citationsOpen Access

Spatial control of crystallinity in additively manufactured PAEK: strategies for interlayer and intralayer functional grading

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RDRichard DaviesNYNan YiYLYaan Liu

Key Points

  • The aim is to develop a framework for controlling crystallinity gradients in PAEK composite structures to enhance stiffness properties.
  • Modulated thermal profiles to create vertical crystallinity gradients in PAEK.
  • Combined fast and slow crystallizing materials within layers to achieve horizontal gradient.
  • Utilized commercial printer for fabricating functionally graded materials.
  • Achieved vertical crystallinity variation from 9% to 49%.
  • Created distinct horizontal material interfaces between fast and slow crystallizing PAEK.
  • Developed stepwise stiffness gradients without the need for external bonding.

Abstract

• This paper presents a framework for interlayer and intralayer crystallinity grading in PAEK composite structures. • Vertical interlayer crystallinity varied from 9 % to 49 % via thermal profile modulation. • Discrete horizontal gradients achieved by combining fast and slow PAEK materials. • Matrix-driven stiffness control eliminates the need for external adhesion bonding. This study presents a novel framework for manufacturing polyaryletherketone (PAEK) based functionally graded materials (FGMs) with controlled, stepwise stiffness gradients. While traditional material extrusion (MEX) gradients are often limited to vertical variations due to discrete layer stacking, we propose two strategies to achieve discontinuous interlayer or intralayer gradation using a commercial printer. First, we produced a stepwise interlayer (vertical) stiffness gradient using a single material (slow crystallising PAEK AM200) by actively modulating thermal profile to create distinct sections varying in crystallinity (ranging from 9 % to 49 %). Second, we achieved a discrete intralayer (horizontal) gradient by combining fast crystallising PEEK 450 (t 1/2 = 1.4 s) and slow crystallising PAEK AM200 (t 1/2 = 15 s) within the same layer, resulting in sharp material interfaces. By spatially controlling the crystallinity through both thermal parameters and material selection, this work unlocks new design possibilities for complex, high performance thermoplastic components.

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Cite This Study

Davies et al. (2026) studied this question.

synapsesocial.com/papers/69994ba9873532290d01fbc9https://doi.org/10.1016/j.matdes.2026.115691
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