Additive manufacturing is an expanding multidisciplinary field encompassing applications including medical devices(1), aerospace components(2), microfabrication strategies(3,4) and artificial organs(5). Among additive manufacturing approaches, light-based printing technologies, including two-photon polymerization(6), projection micro stereolithography(7,8) and volumetric printing(9-14), have garnered significant attention due to their speed, resolution or potential applications for biofabrication. Here we introduce dynamic interface printing, a new 3D printing approach that leverages an acoustically modulated, constrained air-liquid boundary to rapidly generate centimetre-scale 3D structures within tens of seconds. Unlike volumetric approaches, this process eliminates the need for intricate feedback systems, specialized chemistry or complex optics while maintaining rapid printing speeds. We demonstrate the versatility of this technique across a broad array of materials and intricate geometries, including those that would be impossible to print with conventional layer-by-layer methods. In doing so, we demonstrate the rapid fabrication of complex structures in situ, overprinting, structural parallelization and biofabrication utility. Moreover, we show that the formation of surface waves at the air-liquid boundary enables enhanced mass transport, improves material flexibility and permits 3D particle patterning. We, therefore, anticipate that this approach will be invaluable for applications where high-resolution, scalable throughput and biocompatible printing is required.
Dynamic interface printing.
动态界面打印
阅读:6
作者:Vidler Callum, Halwes Michael, Kolesnik Kirill, Segeritz Philipp, Mail Matthew, Barlow Anders J, Koehl Emmanuelle M, Ramakrishnan Anand, Caballero Aguilar Lilith M, Nisbet David R, Scott Daniel J, Heath Daniel E, Crozier Kenneth B, Collins David J
| 期刊: | Nature | 影响因子: | 48.500 |
| 时间: | 2024 | 起止号: | 2024 Oct;634(8036):1096-1102 |
| doi: | 10.1038/s41586-024-08077-6 | 研究方向: | 其它 |
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