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3D microprinting of inorganic porous materials by chemical linking-induced solidification of nanocrystals

Title of paper
3D microprinting of inorganic porous materials by chemical linking-induced solidification of nanocrystals
Author
[손재성 교수님 연구실] 나노입자 기반 다공성 소재의 마이크로 3D 프린팅 기술
Publication in journal
Nature Communications
Publication date
20231220

 

 

[Abstract]

Three-dimensional (3D) microprinting is considered a next-generation manufacturing process for the production of microscale components; however, the narrow range of suitable materials, which include mainly polymers, is a critical issue that limits the application of this process to functional inorganic materials. Herein, we develop a generalised microscale 3D printing method for the production of purely inorganic nanocrystal-based porous materials. Our process is designed to solidify all-inorganic nanocrystals via immediate dispersibility control and surface linking-induced interconnection in the nonsolvent linker bath and thereby creates multibranched gel networks. The process works with various inorganic materials, including metals, semiconductors, magnets, oxides, and multi-materials, not requiring organic binders or stereolithographic equipment. Filaments with a diameter of sub-10 μm are printed into designed complex 3D microarchitectures, which exhibit full nanocrystal functionality and high specific surface areas as well as hierarchical porous structures. This approach provides the platform technology for designing functional inorganics-based porous materials.

DOI: 10.1038/s41467-023-44145-7

Link: https://www.nature.com/articles/s41467-023-44145-7