Silicone Elastomer with High Elongation at Break Used in Digital Light Processing 3D Printing

被引:0
作者
Tian-Xin Yu
Ya-Yuan Liu
Fu-Yue Tian
Nan-Ying Ning
Bing Yu
Ming Tian
机构
[1] Beijing University of Chemical Technology,State Key Laboratory of Organic
[2] Beijing University of Chemical Technology,Inorganic Composites
[3] Beijing University of Chemical Technology,Beijing Advanced Innovation Center for Soft Matter Science and Engineering
来源
Chinese Journal of Polymer Science | 2023年 / 41卷
关键词
Silicone elastomer; Thiol-ene click chemistry; Light curing; 3D-printing; Chain extender;
D O I
暂无
中图分类号
学科分类号
摘要
3D printing silicone elastomer has demonstrated great potential in diverse areas such as medical devices, flexible electronics and soft robotics. It is of great value to investigate how to improve the mechanical properties, including tensile strength and elongation at break of printed parts. In this work, a light curing system that can be applied in silicone elastomer 3D printing is explored, which is composed of vinyl terminated polysiloxane as the macromer and thiol containing polysiloxane as the crosslinking agent, and a chain extension reaction is also introduced into this light curing system via the addition of the chain extender dithiol molecules, and a light curing system accompanied with chain extension is designed and realized based on the thiol-ene click reaction mechanism. After reinforced with silica fillers, the obtained light curing system can endow the light curing silicone elastomer with better mechanical properties under the condition of a lower viscosity of the precursor, the tensile strength and elongation at break can reach 525.5 kPa and 601%, respectively. This light curing system provides a feasible method to solve the contradiction between the viscosity of the precursor and the mechanical properties of the light curing elastomer in the digital light processing (DLP) 3D printing field.
引用
收藏
页码:1786 / 1795
页数:9
相关论文
共 256 条
  • [1] Giri R(2012)Effect of electron beam irradiation on dynamic mechanical, thermal and morphological properties of LLDPE and PDMS rubber blends Radiat. Phys. Chem. 81 1930-1942
  • [2] Naskar K(2020)High-performance electrospinning-phase inversion composite PDMS membrane for extractive membrane bioreactor: fabrication, characterization, optimization and application J. Membr. Sci. 597 117624-113
  • [3] Nando G B(2018)Using thickness-shear mode quartz resonator for characterizing the viscoelastic properties of PDMS during cross-linking, from the liquid to the solid state and at different temperatures Sensor. Actuat. A-Phys. 280 107-160
  • [4] Ren L F(2019)Permeability and mechanical properties of gradient porous PDMS scaffolds fabricated by 3D-printed sacrificial templates designed with minimal surfaces Acta Biomater. 96 149-134
  • [5] Liu C(2018)PDMS with designer functionalities—properties, modifications strategies, and applications Prog. Polym. Sci. 83 97-6161
  • [6] Xu Y(2022)3D printing and characterization of a soft and biostable elastomer with high flexibility and strength for biomedical applications J. Mech. Behav. Biomed. 104 1751-5543
  • [7] Zhang X(2020)3D printing silicone elastomer for patient-specific wearable pulse oximeter Adv. Healthc. Mater. 9 1901735-3753
  • [8] Shao J(2021)Tailored and highly stretchable sensor prepared by crosslinking an enhanced 3D printed UV-curable sacrificial mold Adv. Funct. Mater. 31 2008729-3059
  • [9] He Y(2021)Degradable and fully recyclable dynamic thermoset elastomer for 3D-printed wearable electronics Adv. Funct. Mater. 31 2009799-23583
  • [10] Dalla Monta A(2021)Thermoplastic photoheating polymer enables 3D-printed self-healing light-propelled smart devices Adv. Funct. Mater. 31 2009568-6