4.7 Review

Polymerization mechanisms initiated by spatio-temporally confined light

期刊

NANOPHOTONICS
卷 10, 期 4, 页码 1211-1242

出版社

WALTER DE GRUYTER GMBH
DOI: 10.1515/nanoph-2020-0551

关键词

3D printing; light-matter interaction; material engineering; multi-photon lithography; nanoscale; photopolymerization

资金

  1. Research Council of Lithuania (LMT-LT) [S-MIP-20-17]
  2. EU ERDF, through the INTERREG BSR Programme, ECOLABNET project [R077]
  3. EU Horizon 2020, Research and Innovation programme LASERLAB-EUROPE JRA project [871124]
  4. NSF [CMMI-1905582]
  5. project HELLAS-CH - Operational Program Competitiveness, Entrepreneurship and Innovation (NSRF 2014-2020) [MIS 5002735]
  6. project HELLAS-CH - Operational Program Competitiveness, Entrepreneurship and Innovation (NSRF 2014-2020) - EU ERDF [MIS 5002735]
  7. FEMTOSURF, the European Union's Horizon 2020 research and innovation program [825512]
  8. JST [JPMJCR19I3]
  9. ARC [DP190103284, LP190100505]

向作者/读者索取更多资源

Ultrafast laser 3D lithography based on multi-photon lithography offers precise rapid prototyping and flexible additive manufacturing options, yet there is still incomplete understanding regarding factors like spatial resolution, accuracy, fabrication throughput, repeatability, and material properties.
Ultrafast laser 3D lithography based on non-linear light-matter interactions, widely known as multi-photon lithography (MPL), offers unrivaled precision rapid prototyping and flexible additive manufacturing options. 3D printing equipment based on MPL is already commercially available, yet there is still no comprehensive understanding of factors determining spatial resolution, accuracy, fabrication throughput, repeatability, and standardized metrology methods for the accurate characterization of the produced 3D objects and their functionalities. The photoexcitation mechanisms, spatial-control or photo-modified volumes, and the variety of processable materials are topics actively investigated. The complexity of the research field is underlined by a limited understanding and fragmented knowledge of light-excitation and material response. Research to date has only provided case-specific findings on photoexcitation, chemical modification, and material characterization of the experimental data. In this review, we aim to provide a consistent and comprehensive summary of the existing literature on photo-polymerization mechanisms under highly confined spatial and temporal conditions, where, besides the excitation and cross-linking, parameters such as diffusion, temperature accumulation, and the finite amount of monomer molecules start to become of critical importance. Key parameters such as photoexcitation, polymerization kinetics, and the properties of the additively manufactured materials at the nanoscale in 3D are examined, whereas, the perspectives for future research and as well as emerging applications are outlined.

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