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Photo-curing 3D printing technique and its challenges.

Haoyuan Quan1, Ting Zhang1, Hang Xu1

  • 1College of Materials Science and Engineering, Beijing University of Chemical Technology, Beijing, 100029, PR China.

Bioactive Materials
|February 6, 2020
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Summary

Photo-curing 3D printing, including SLA, DLP, LCD, CLIP, and MJP, offers high precision and speed for complex object fabrication. This review covers materials, biomedical applications, and future challenges in advanced 3D printing technologies.

Keywords:
3D printingBiomedical applicationsPhoto-curing

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Area of Science:

  • Additive Manufacturing
  • Materials Science
  • Biomedical Engineering

Background:

  • 3D printing technology has advanced significantly over the past decade.
  • Photo-curing 3D printing, the earliest and most mature technique, emerged in 1988 with Stereolithography Appearance (SLA).
  • Numerous photo-curing techniques have since been developed, including DLP, LCD, CLIP, and MJP.

Purpose of the Study:

  • To review five industrial photo-curing 3D printing technologies: SLA, DLP, LCD, CLIP, and MJP.
  • To overview material characteristics and applications in the biomedical field.
  • To discuss current challenges and future directions in photo-curing 3D printing.

Main Methods:

  • Review of established and emerging photo-curing 3D printing techniques.
  • Analysis of material properties relevant to 3D printing.
  • Survey of biomedical applications and progress.

Main Results:

  • Photo-curing 3D printing offers advantages like high precision, smooth surfaces, and rapid printing speeds.
  • Specific techniques like SLA, DLP, LCD, CLIP, and MJP enable the fabrication of complex, high-precision objects.
  • Significant progress has been made in applying these technologies within the biomedical field.

Conclusions:

  • Photo-curing 3D printing technologies are versatile and rapidly evolving.
  • Continued research into materials and applications, particularly in biomedicine, is crucial.
  • Addressing existing challenges will further enhance the capabilities and adoption of these advanced manufacturing methods.