铜
热导率
融合
材料科学
制作
激光器
电阻率和电导率
热稳定性
3D打印
纳米颗粒
电导率
复合材料
热传导
纳米技术
冶金
化学工程
化学
光学
物理
哲学
物理化学
语言学
医学
替代医学
病理
电气工程
工程类
作者
Yingang Liu,Jingqi Zhang,Ranming Niu,Mohamad Bayat,Ying Zhou,Yu Yin,Qiyang Tan,Shiyang Liu,Jesper Henri Hattel,Miaoquan Li,Xiaoxu Huang,Julie M. Cairney,Yi‐Sheng Chen,Mark Easton,Christopher Hutchinson,Mingxing Zhang
标识
DOI:10.1038/s41467-024-45732-y
摘要
Abstract Additive manufacturing (AM), known as 3D printing, enables rapid fabrication of geometrically complex copper (Cu) components for electrical conduction and heat management applications. However, pure Cu or Cu alloys produced by 3D printing often suffer from either low strength or low conductivity at room and elevated temperatures. Here, we demonstrate a design strategy for 3D printing of high strength, high conductivity Cu by uniformly dispersing a minor portion of lanthanum hexaboride (LaB 6 ) nanoparticles in pure Cu through laser powder bed fusion (L-PBF). We show that trace additions of LaB 6 to pure Cu results in an improved L-PBF processability, an enhanced strength, an improved thermal stability, all whilst maintaining a high conductivity. The presented strategy could expand the applicability of 3D printed Cu components to more demanding conditions where high strength, high conductivity and thermal stability are required.
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