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Preliminary Study on 3D printing of PEGDA Hydrogels for Frontal Sinus Implants using Digital Light Processing (DLP) : Current Directions in Biomedical Engineering

机译:使用数字光处理(DLP)对额窦植入物进行PEGDA水凝胶3D打印的初步研究:生物医学工程的当前方向

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Digital Light Processing (DLP) enables high precision 3D-printing of photopolymers and holds promising potential for patient-specific implant solutions. On the material side, Poly(ethylene glycol) diacrylate (PEGDA) has emerged as an interesting material for use in biomedical applications. For adequate photopolymerization, a photoinitiator and a light absorber are necessary, using welldefined concentrations. This study shows preliminary results of DLP 3D-printing of different PEGDA hydrogel compositions with varying water content (90; 70; 50; 30; 10; 0 % w/w) as well as varying concentrations of a photoinitiator and a light absorber. Printing performance and accuracy are investigated by printing rectangular test samples as well as an anatomically customised tubular frontal sinus implant prototype. For basic mechanical characterisation, the hardness of the printed hydrogels is investigated using a Shore A durometer. The results show a decrease in printing accuracy and hardness with an increasing water content of the composition. There is a need to use a light absorber to reach high printing accuracy. This leads to a need for increasing photoinitiator concentration and prolonged light exposure to achieve proper printing performance.
机译:数字光处理(DLP)可实现光敏聚合物的高精度3D打印,并具有针对患者特定的植入物解决方案的潜力。在材料方面,聚乙二醇二丙烯酸酯(PEGDA)已成为一种有趣的材料,可用于生物医学应用。为了进行适当的光聚合,必须使用明确定义的浓度的光引发剂和光吸收剂。这项研究显示了不同PEGDA水凝胶组合物的DLP 3D打印的初步结果,这些组合物具有不同的水含量(90、70、50、30、10、0%w / w)以及不同浓度的光引发剂和光吸收剂。通过打印矩形测试样品以及解剖学定制的管状额窦植入物原型来研究打印性能和准确性。为了进行基本的机械表征,使用肖氏A硬度计研究了印刷水凝胶的硬度。结果表明,随着组合物水含量的增加,印刷精度和硬度降低。需要使用光吸收剂以达到高印刷精度。这导致需要增加光引发剂浓度和延长的曝光时间以实现适当的印刷性能。

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