Toward Standardized Microscale Tensile Testing for Two-Photon Polymerization-Fabricated Materials in Liquid.

IF 8.3 Q1 MATERIALS SCIENCE, MULTIDISCIPLINARY
Small Science Pub Date : 2025-07-22 eCollection Date: 2025-09-01 DOI:10.1002/smsc.202500228
Grayson Minnick, Timothy Goldsmith, Bahareh Tajvidi Safa, Amir Ostadi Moghaddam, Jordan Rosenbohm, Nickolay V Lavrik, Wei Gao, Ruiguo Yang
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引用次数: 0

Abstract

Two-photon polymerization (TPP) enables the fabrication of intricate 3D microstructures with submicron precision, offering significant potential in biomedical applications like tissue engineering. In such applications, to print materials and structures with defined mechanics, it is crucial to understand how TPP printing parameters impact the material properties in a physiologically relevant liquid environment. Herein, an experimental approach utilizing microscale tensile testing (μTT) for the systematic measurement of TPP-fabricated microfibers submerged in liquid as a function of printing parameters is introduced. Using a diurethane dimethacrylate-based resin, the influence of printing parameters on microfiber geometry is first explored, demonstrating cross-sectional areas ranging from 1 to 36 μm2. Tensile testing reveals Young's moduli between 0.5 and 1.5 GPa and yield strengths from 10 to 60 MPa. The experimental data show an excellent fit with the Ogden hyperelastic polymer model, which enables a detailed analysis of how variations in writing speed, laser power, and printing path influence the mechanical properties of TPP microfibers. The μTT method is also showcased for evaluating multiple commercial resins and for performing cyclic loading experiments. Collectively, this study builds a foundation toward a standardized microscale tensile testing framework to characterize the mechanical properties of TPP printed structures.

液体中双光子聚合制备材料的标准化微尺度拉伸试验研究。
双光子聚合(TPP)能够制造出亚微米精度的复杂3D微结构,在组织工程等生物医学应用中具有巨大的潜力。在这些应用中,要打印具有明确力学的材料和结构,了解TPP打印参数如何在生理相关的液体环境中影响材料性能至关重要。本文介绍了一种利用微尺度拉伸测试(μTT)系统测量浸液中tpp制备的微纤维随打印参数变化的实验方法。采用二氨基甲酸乙酯基树脂,首次探索了打印参数对超细纤维几何形状的影响,展示了1至36 μm2的横截面积。拉伸试验表明,杨氏模量在0.5 ~ 1.5 GPa之间,屈服强度在10 ~ 60 MPa之间。实验数据显示与Ogden超弹性聚合物模型非常吻合,可以详细分析书写速度、激光功率和打印路径的变化如何影响TPP微纤维的机械性能。μTT方法也展示了评估多种商业树脂和执行循环加载实验。总的来说,本研究为标准化的微尺度拉伸测试框架奠定了基础,以表征TPP打印结构的机械性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
14.00
自引率
2.40%
发文量
0
期刊介绍: Small Science is a premium multidisciplinary open access journal dedicated to publishing impactful research from all areas of nanoscience and nanotechnology. It features interdisciplinary original research and focused review articles on relevant topics. The journal covers design, characterization, mechanism, technology, and application of micro-/nanoscale structures and systems in various fields including physics, chemistry, materials science, engineering, environmental science, life science, biology, and medicine. It welcomes innovative interdisciplinary research and its readership includes professionals from academia and industry in fields such as chemistry, physics, materials science, biology, engineering, and environmental and analytical science. Small Science is indexed and abstracted in CAS, DOAJ, Clarivate Analytics, ProQuest Central, Publicly Available Content Database, Science Database, SCOPUS, and Web of Science.
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