为材料挤出研制的生物医学PDMS- PEEK复合材料的印刷性能和力学性能

ty10086 提交于 周三, 08/25/2021 - 16:22
文章英文标题
Printability and mechanical performance of biomedical PDMS-PEEK composites developed for material extrusion
正文
聚二甲基硅氧烷( PDMS )材料广泛应用于面部假体、片上实验装置和软组织工程支架的制造,但其加工性制造具有挑战性。液态硅橡胶( LSRs )因其在浇铸时具有较高的形状保真度而受到青睐,但其黏度和表面张力较低往往会阻止自支撑、后挤出。聚醚醚酮( PEEK )颗粒增强通过界面结合已被证明增强了PDMS的关键性能,拓展了其端用功能。然而,这类粒子对LSR - PDMS可打印性的影响还没有研究。本研究首次成功地对无溶剂生物相容性PDMS- PEEK复合材料(可达30 wt % PEEK )进行了材料挤出( ME )打印的表征。流变分析证实了所有PDMS- PEEK复合材料在外加载荷(在打印机的容差范围内)和静置时的主导储能模量(即打印机可以自支撑)下剪切变薄,被认为是ME基印刷的极佳选择。在打印速度和位移值相当的情况下,使用所获得的流变数据指导初始打印性研究,发现随着PEEK含量的增加,轨迹保真度越好。PEEK含量较高的复合材料,其邵尔A硬度和刚度(拉伸和压缩)显著增加,且呈块状。最后,增强的形状保真度(得益于PEEK增强)和几何自主权进一步扩大了PDMS的制造自由度,从而可以通过控制填充密度来增加力学性能的范围,这在以往的常规铸造制造中是难以置信的。从根本上说,这可能导致制造可用于复制人体软组织的异质特性和其他先进材料应用的辐射状空间分级多材料结构和装置。
文章内容(英文)
Polydimethylsiloxane (PDMS) materials are widely adopted in the manufacture of facial prostheses, lab-on-chip devices and scaffolds for soft-tissue engineering applications; however, their processing by additive manufacturing (AM) has proved challenging. Liquid silicone rubbers (LSRs) are favoured for their high shape fidelity when cast, but their low viscosity and surface tension often prevent self-support, post-extrusion. Poly(ether) ether ketone (PEEK) particle reinforcement through interfacial bonding has proven to enhance key properties of PDMS, expanding their end-use functionality. Still, the impact of such particles on the printability of LSR-PDMS is not explored. In this study, for the first time, solvent-free biocompatible PDMS-PEEK composites (up to 30 wt% PEEK) were successfully characterised for material extrusion (ME) printing. Rheological analysis confirmed shear-thinning of all PDMS-PEEK composites under applied load (within the tolerances of the printer) and dominant storage moduli at rest (i.e. prints can self-support), considered highly desirable for ME-based printing. Attained rheological datasets were used to guide initial printability studies, which revealed finer track fidelity with rising fractional content of PEEK, at comparable print speed and displacement values. Composites with higher PEEK content demonstrated significant increases in Shore A hardness and stiffness (in tension and compression) in bulk form. Last but not least, enhanced shape fidelity (thanks to PEEK reinforcement) and geometrical autonomy further expanded the manufacturing freedom of PDMS, whereby infill density could be controlled in order to increase the range of mechanical performance, previously unachievable with conventional casting fabrication. Fundamentally, this could lead to the manufacture of bespoke spatially graded multi-material structures and devices that could be used to replicate the heterogenous properties of soft human tissues and in other advanced material applications.
来源出处
Journal|[J]Journal of the Mechanical Behavior of Biomedical MaterialsVolume 115, 2021.
DOI
https://doi.org/10.1016/J.JMBBM.2020.104291

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备注说明:

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