Isotropic sintering shrinkage of 3D glass-ceramic nanolattices: backbone preforming and mechanical enhancement

Nianyao Chai, Yunfan Yue, Xiangyu Chen, Zhongle Zeng, Sheng Li, Xuewen Wang
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Abstract

There is a perpetual pursuit for free-form glasses and ceramics featuring outstanding mechanical properties as well as chemical and thermal resistance. It is a promising idea to shape inorganic materials in three-dimensional (3D) forms to reduce their weight while maintaining high mechanical properties. A popular strategy for the preparation of 3D inorganic materials is to mold the organic-inorganic hybrid photoresists into 3D micro- and nano-structures and remove the organic components by subsequent sintering. However, due to the discrete arrangement of inorganic components in the organic-inorganic hybrid photoresists, it remains a huge challenge to attain isotropic shrinkage during sintering. Herein, we demonstrate the isotropic sintering shrinkage by forming the consecutive -Si-O-Si-O-Zr-O- inorganic backbone in photoresists and fabricate 3D glass-ceramic nanolattices with enhanced mechanical properties. The femtosecond (fs) laser is used for two-photon polymerization (TPP) to fabricate 3D green body structures. After subsequent sintering at 1000 ℃, high-quality 3D glass-ceramic microstructures can be obtained with perfectly intact and smooth morphology. In-suit compression experiments and finite-element simulations reveal that octahedral-truss (Oct-Truss) lattices possess remarkable adeptness in bearing stress concentration and maintain the structural integrity to resist rod bending, indicating that this structure is a candidate for preparing lightweight and high stiffness glass-ceramic nanolattices. 3D printing of such glasses and ceramics has significant implications in a number of industrial applications, including metamaterials, microelectromechanical systems, photonic crystals, and damage-tolerant lightweight materials.
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三维玻璃陶瓷纳米晶格的各向同性烧结收缩:骨架预成型和机械强化
人们一直在追求具有出色机械性能、耐化学性和耐热性的自由形态玻璃和陶瓷。将无机材料塑造成三维(3D)形式,以减轻其重量,同时保持较高的机械性能,是一个很有前景的想法。制备三维无机材料的一种常用策略是将有机-无机混合光刻胶模塑成三维微观和纳米结构,然后通过烧结去除有机成分。然而,由于有机-无机杂化光刻胶中无机成分的离散排列,在烧结过程中实现各向同性收缩仍然是一个巨大的挑战。在此,我们通过在光刻胶中形成连续的-Si-O-Si-O-Zr-O-无机骨架,证明了烧结收缩的各向同性,并制造出具有增强机械性能的三维玻璃陶瓷纳米晶格。飞秒(fs)激光用于双光子聚合(TPP)以制造三维绿色体结构。随后在 1000 ℃ 下烧结,可获得形态完整光滑的高质量三维玻璃陶瓷微结构。内部压缩实验和有限元模拟显示,八面体桁架(Oct-Truss)晶格在承受应力集中方面表现出色,并能保持结构完整性以抵抗杆弯曲,这表明这种结构是制备轻质高刚度玻璃陶瓷纳米晶格的候选材料。这种玻璃和陶瓷的三维打印在许多工业应用中都具有重要意义,包括超材料、微机电系统、光子晶体和耐损伤轻质材料。
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