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Digital light processing in a hybrid atomic force microscope: In Situ, nanoscale characterization of the printing process.
Higgins, Callie I; Brown, Tobin E; Killgore, Jason P.
Afiliação
  • Higgins CI; Applied Chemicals and Materials Division, National Institute of Standards and Technology Boulder, CO 80305, USA.
  • Brown TE; Applied Chemicals and Materials Division, National Institute of Standards and Technology Boulder, CO 80305, USA.
  • Killgore JP; Applied Chemicals and Materials Division, National Institute of Standards and Technology Boulder, CO 80305, USA.
Addit Manuf ; 382021 Feb.
Article em En | MEDLINE | ID: mdl-34268068
Stereolithography (SLA) and digital light processing (DLP) are powerful additive manufacturing techniques that address a wide range of applications including regenerative medicine, prototyping, and manufacturing. Unfortunately, these printing processes introduce micrometer-scale anisotropic inhomogeneities due to the resin absorptivity, diffusivity, reaction kinetics, and swelling during the requisite photoexposure. Previously, it has not been possible to characterize high-resolution mechanical heterogeneity as it develops during the printing process. By combining DLP 3D printing with atomic force microscopy in a hybrid instrument, heterogeneity of a single, in situ printed voxel is characterized. Here, we describe the instrument and demonstrate three modalities for characterizing voxels during and after printing. Sensing Modality I maps the mechanical properties of just-printed, resin-immersed voxels, providing the framework to study the relationships between voxel sizes, print exposure parameters, and voxel-voxel interactions. Modality II captures the nanometric, in situ working curve and is the first demonstration of in situ cure depth measurement. Modality III dynamically senses local rheological changes in the resin by monitoring the viscoelastic damping coefficient of the resin during patterning. Overall, this instrument equips researchers with a tool to develop rich insight into resin development, process optimization, and fundamental printing limits.
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Texto completo: 1 Base de dados: MEDLINE Idioma: En Ano de publicação: 2021 Tipo de documento: Article

Texto completo: 1 Base de dados: MEDLINE Idioma: En Ano de publicação: 2021 Tipo de documento: Article