Synthesis and evaluation of novel urethane macromonomers for the formulation of fracture tough 3D printable dental materials

IF 3.3 2区 医学 Q2 ENGINEERING, BIOMEDICAL
Florian Schönl , Martin Demleitner , Jörg Angermann , Pascal Fässler , Iris Lamparth , Kai Rist , Thomas Schnur , Yohann Catel , Sabine Rosenfeldt , Holger Ruckdäschel
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Abstract

3D printing of materials which combine fracture toughness, high modulus and high strength is quite challenging. Most commercially available 3D printing resins contain a mixture of multifunctional (meth)acrylates. The resulting 3D printed materials are therefore brittle and not adapted for the preparation of denture bases. For this reason, this article focuses on toughening by incorporation of triblock copolymers in methacrylate-based materials. In a first step, three urethane dimethacrylates with various alkyl spacer length were synthesized in a one-pot two-step synthesis. Each monomer was combined with 2-phenoxyethyl methacrylate as a monofunctional monomer and a polycaprolactone-polydimethylsiloxane-polycaprolactone triblock copolymer was added as toughener. The formation of nanostructures via self-assembly was proven by small angle X-ray scattering (SAXS) and transmission electron microscopy (TEM). The addition of the triblock copolymer resulted in a strong increase in fracture toughness for all mixtures. The nature of the urethane dimethacrylate had a significant impact on fracture toughness and flexural strength and modulus of the cured materials. Most promising systems were also investigated via dynamic fatigue propagation da/dN measurements, confirming that the toughening also works under dynamic load. By carefully selecting the length of the urethane dimethacrylate spacer and the amount of block copolymer, materials with the desired physical properties could be efficiently formulated. Especially the formulation containing the medium alkyl spacer length (DMA2/PEMA) and 5 wt% BCP1 (block copolymer), exhibits excellent mechanical properties and high fracture toughness.

Abstract Image

合成和评估用于配制断裂韧性 3D 可打印牙科材料的新型聚氨酯大单体
三维打印兼具断裂韧性、高模量和高强度的材料相当具有挑战性。大多数市售的 3D 打印树脂都含有多功能(甲基)丙烯酸酯混合物。因此,3D 打印出来的材料比较脆,不适合制作义齿基托。因此,本文重点研究在甲基丙烯酸酯基材料中加入三嵌段共聚物的增韧方法。首先,通过一步法两步合成法合成了三种具有不同烷基间隔长度的聚氨酯二甲基丙烯酸酯。每种单体都与 2-苯氧乙基甲基丙烯酸酯结合作为单官能团单体,并加入聚己内酯-聚二甲基硅氧烷-聚己内酯三嵌段共聚物作为增韧剂。小角 X 射线散射(SAXS)和透射电子显微镜(TEM)证明了纳米结构是通过自组装形成的。添加三嵌段共聚物后,所有混合物的断裂韧性都得到了显著提高。聚氨酯二甲基丙烯酸酯的性质对固化材料的断裂韧性、弯曲强度和模量有显著影响。我们还通过动态疲劳扩展 da/dN 测量对最有前途的系统进行了研究,证实了增韧在动态负荷下也能发挥作用。通过仔细选择聚氨酯二甲基丙烯酸酯间隔物的长度和嵌段共聚物的用量,可以有效配制出具有所需物理性能的材料。特别是含有中等烷基间隔物长度(DMA2/PEMA)和 5 wt% BCP1(嵌段共聚物)的配方,具有优异的机械性能和较高的断裂韧性。
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来源期刊
Journal of the Mechanical Behavior of Biomedical Materials
Journal of the Mechanical Behavior of Biomedical Materials 工程技术-材料科学:生物材料
CiteScore
7.20
自引率
7.70%
发文量
505
审稿时长
46 days
期刊介绍: The Journal of the Mechanical Behavior of Biomedical Materials is concerned with the mechanical deformation, damage and failure under applied forces, of biological material (at the tissue, cellular and molecular levels) and of biomaterials, i.e. those materials which are designed to mimic or replace biological materials. The primary focus of the journal is the synthesis of materials science, biology, and medical and dental science. Reports of fundamental scientific investigations are welcome, as are articles concerned with the practical application of materials in medical devices. Both experimental and theoretical work is of interest; theoretical papers will normally include comparison of predictions with experimental data, though we recognize that this may not always be appropriate. The journal also publishes technical notes concerned with emerging experimental or theoretical techniques, letters to the editor and, by invitation, review articles and papers describing existing techniques for the benefit of an interdisciplinary readership.
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