材料科学
石墨烯
掺杂剂
制作
纳米技术
3D打印
激光器
基质(水族馆)
复合材料
兴奋剂
光电子学
病理
地质学
物理
替代医学
光学
海洋学
医学
作者
Wenjie Yu,Weiwei Zhao,Shuaipeng Wang,Qing Chen,Xiaoqing Liu
标识
DOI:10.1002/adma.202209545
摘要
Abstract Among the different states of matter, liquids have particular advantages in terms of easy handling and recycling, which has been manifested in various chemosynthetic reactions, but remains underexplored in graphene synthesis. This work reports the direct conversion of liquid organic precursor into versatile 3D graphene materials using rapid laser irradiation. The liquid precursor allows for easy fabrication of graphene with significant 3D architectures, including powders, patterned composite structures, and substrate‐free films. Taking advantage of the high compatibility of liquid precursor with a wide range of dopants, the 3D graphene can be further engineered together with various functional components, especially the high loading (≈15 wt.%) and well‐dispersed (an average diameter of less than 50 nm) high‐entropy alloy nanoparticles. Furthermore, combined with the 3D printing strategy, the rapid construction of graphene with complex and accurate 3D shapes is demonstrated via a selective in situ laser transforming (SLT) strategy. With the high structural integrity unachievable by traditional 3D printing methods, the obtained objects show an electrical conductivity of 4380 S m −1 and a compressive modulus of 31.8 MPa. The results reported in this work will open up a new way for the fabrication of functional carbon materials with customizable shapes and components.
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