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Toward 3D Printing of Medical Implants: Reduced Lateral Droplet Spreading of Silicone Rubber under Intense IR Curing

机译:迈向医疗植入物的3D打印:在强烈的IR固化条件下,减少硅橡胶的横向液滴散布

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The direct fabrication of silicone-rubber-based individually shaped active neural implants requires high-speed-curing systems in order to prevent extensive spreading of the viscous silicone rubber materials during vulcanization. Therefore, an infrared-laser-based test setup was developed to cure the silicone rubber materials rapidly and to evaluate the resulting spreading in relation to its initial viscosity; the absorbed infrared radiation, and the surface tensions of the fabrication bed's material. Different low adhesion materials (polyimide, Parylene-C, polytetrafluoroethylene, and fluorinated ethylenepropylene) were used as bed materials to reduce the spreading of the silicone rubber materials by means of their well-known weak surface tensions. Further, O-2-plasma treatment was performed on the bed materials to reduce the surface tensions. To calculate the absorbed radiation, the emittance of the laser was measured, and the absorptances of the materials were investigated with Fourier transform infrared spectroscopy in attenuated total reflection mode. A minimum silicone rubber spreading of 3.24% was achieved after 2 s curing time, indicating the potential usability of the presented high-speed-curing process for the direct fabrication of thermal-curing silicone rubbers.
机译:为了防止硫化过程中粘性硅橡胶材料的广泛扩散,直接制造基于硅橡胶的形状各异的活性神经植入物需要高速固化系统。因此,开发了一种基于红外激光的测试装置,以快速固化硅橡胶材料,并评估相对于其初始粘度的扩散结果。吸收的红外辐射以及制造床材料的表面张力。不同的低粘附力材料(聚酰亚胺,聚对二甲苯-C,聚四氟乙烯和氟化乙丙烯)被用作床层材料,以通过其众所周知的弱表面张力来减少硅橡胶材料的铺展。此外,在床材料上进行了O-2-等离子体处理以减小表面张力。为了计算吸收的辐射,测量了激光的发射率,并使用傅里叶变换红外光谱在衰减全反射模式下研究了材料的吸收率。在2 s的固化时间后,硅橡胶的最小铺展度为3.24%,这表明所提出的高速固化工艺可用于直接制造热固化硅橡胶。

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