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March 12, 2026Journal of Functional Biomaterials3 citationsOpen Access

Next-Generation Orthodontics: Functional Resins, Biomechanics, Biocompatibility, and Current Clinical Reality of Direct 3D-Printed Aligners

YZYulong ZhangBWBenjamin M. Wu

Key Points

  • The aim is to assess the technological advancements in direct 3D-printed aligners and their clinical implications.
  • Comprehensive review of material science and chemistry related to direct 3D-printed aligners.
  • Evaluation of preclinical research on functional materials and their properties.
  • Analysis of limited clinical data comparing 3D-printed aligners with traditional clear aligners.
  • Direct 3D-printed aligners offer enhanced dimensional control over traditional clear aligners.
  • Emerging preclinical research suggests improvements with functional materials like antibacterial agents.
  • Concerns about monomer elution and microplastic generation were highlighted alongside mechanical benefits.

Abstract

The orthodontic landscape is currently witnessing a significant technological evolution with the emergence of direct 3D-printed aligners (DPAs), which promise to close the digital workflow loop by eliminating the geometric limitations and solid model waste inherent to traditional thermoformed clear aligners (TCAs). This review provides a comprehensive analysis of the material science governing this transition from inert thermoplastic sheets to reactive photocurable resins. We explore the fundamental chemistry of DPA materials, and the pivotal role of post-processing in ensuring mechanical integrity and biocompatibility. Beyond passive mechanics, this review highlights preclinical research in functional material engineering, detailing how experimental DPAs are being investigated for the integration of antibacterial agents, remineralization fillers, and drug delivery systems. Furthermore, we evaluate the limited but emerging clinical data on DPAs, contrasting their shape-memory properties and force delivery profiles with conventional appliances, while critically addressing emerging safety concerns regarding monomer elution and microplastic generation. We conclude that while DPA technology offers superior dimensional control, comprehensive life cycle assessments and long-term in vivo trials are essential to fully substantiate their clinical efficacy, overall sustainability, and potential as advanced orthodontic appliances.

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Cite This Study

Zhang et al. (2026) studied this question.

synapsesocial.com/papers/69b257df96eeacc4fcec6db2https://doi.org/10.3390/jfb17030129
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