Published January 1, 2025 | Version v1
Journal article Open

Effect of Geometric Design on the Mechanical Performance of Digital Light Processing (DLP)-Printed Microneedles

  • 1. Marmara Univ, Ctr Nanotechnol & Biomat Applicat & Res NBUAM, TR-34854 Istanbul, Turkiye
  • 2. North Carolina State Univ, Dept Mat Sci & Engn, Raleigh, NC 27695 USA
  • 3. Univ North Carolina, Joint Dept Biomed Engn, Chapel Hill, NC 27599 USA

Description

This study describes the processing of microneedle (MN) arrays with three different heights of arrowhead (600 mu m (A1), 800 mu m (A2), and 1000 mu m (A3)), pyramid (600 mu m (P1), 800 mu m (P2), and 1000 mu m (P3)), and turret (600 mu m (T1), 800 mu m (T2), and 1000 mu m (T3)) designs using a digital light processing (DLP)-based 3D printing method. The 3D-printed MNs were examined for their morphological characteristics and mechanical performance. Scanning electron microscopy (SEM) imaging confirmed that all of the MNs were fabricated without fracture or bending. Each design exhibited distinct structural characteristics: arrowhead MNs displayed a well-defined morphology with sharp tips, pyramid MNs showed slight layering, and turret MNs, characterized by a wider base and sharp tips, had a smoother surface compared to the other designs. Mechanical tests revealed that the arrowhead MNs carried less load and were more prone to bending, while the pyramid and turret designs provided higher mechanical stability and penetration capacity. The pyramid design (P3) showed the highest mechanical strength, while turret MNs offered a more stable performance despite lower penetration capacity. These findings highlight the critical role of geometric design in optimizing MN performance for effective transdermal drug delivery.

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