材料科学
复合材料
挤压
聚合物
热塑性弹性体
热导率
弹性体
热的
大气温度范围
相(物质)
纳米复合材料
3D打印
热塑性复合材料
透射电子显微镜
变形(气象学)
灵活性(工程)
微观结构
热塑性塑料
扫描电子显微镜
衍射
复合数
基质(化学分析)
辅助
热膨胀
堆积
热分解
热塑性聚合物
热分析
先进复合材料
作者
Jinyu Bu,Robsun Gina,Naifu Shen,Fan Zhang,Atik Faisal,Ran Tao,Weinan Xu
出处
期刊:
[American Chemical Society]
日期:2026-02-03
卷期号:4 (2): 1037-1046
标识
DOI:10.1021/acsaenm.5c01153
摘要
Polymer–metal composites that combine a soft polymer matrix with low-melting-point metal/alloy particles that can be melted within a compatible temperature range hold great promise for multifunctional additive manufacturing (AM). The reversible melting–solidification phase transition of the metal component, coupled with the mechanical flexibility and stretchability of the polymer matrix, enables thermally responsive and mechanically tunable composites suitable for 3D printing. However, a fundamental understanding of their thermal, rheological, and morphological behaviors remains limited. In this work, we investigate a series of polymer–metal composites composed of Field’s metal (FM) and thermoplastic elastomers (TPE), with the goal of elucidating the critical structure–property relationships for material extrusion-based AM. Thermo-rheological analyses reveal distinct temperature-dependent transitions strongly influenced by FM content and processing conditions. X-ray diffraction and electron microscopy further demonstrate significant process-dependent morphological evolution. Notably, these composites exhibit highly tunable thermal conductivity, achieving values up to 19 W m–1 K–1 after the postprinting processing. Successful 3D printing via pellet extrusion reveals substantial differences in thermal, rheological, and mechanical properties compared to solution-cast counterparts, primarily due to shear-induced morphological rearrangement during printing. The insights gained into the key structure–property relationships of these 3D-printable multifunctional FM–TPE composites pave the way for their potential applications in thermal management, soft electronics, and robotics.
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