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克级固态材料的闪中闪合成法

Flash-within-flash synthesis of gram-scale solid-state materials.

作者信息

Choi Chi Hun 'William', Shin Jaeho, Eddy Lucas, Granja Victoria, Wyss Kevin M, Damasceno Bárbara, Guo Hua, Gao Guanhui, Zhao Yufeng, Higgs C Fred, Han Yimo, Tour James M

机构信息

Department of Materials Science and Nanoengineering, Rice University, Houston, TX, USA.

Department of Chemistry, Rice University, Houston, TX, USA.

出版信息

Nat Chem. 2024 Nov;16(11):1831-1837. doi: 10.1038/s41557-024-01598-7. Epub 2024 Aug 8.

DOI:10.1038/s41557-024-01598-7
PMID:39117740
Abstract

Sustainable manufacturing that prioritizes energy efficiency, minimal water use, scalability and the ability to generate diverse materials is essential to advance inorganic materials production while maintaining environmental consciousness. However, current manufacturing practices are not yet equipped to fully meet these requirements. Here we describe a flash-within-flash Joule heating (FWF) technique-a non-equilibrium, ultrafast heat conduction method-to prepare ten transition metal dichalcogenides, three group XIV dichalcogenides and nine non-transition metal dichalcogenide materials, each in under 5 s while in ambient conditions. FWF achieves enormous advantages in facile gram scalability and in sustainable manufacturing criteria when compared with other synthesis methods. Also, FWF allows the production of phase-selective and single-crystalline bulk powders, a phenomenon rarely observed by any other synthesis method. Furthermore, FWF MoSe outperformed commercially available MoSe in tribology, showcasing the quality of FWF materials. The capability for atom substitution and doping further highlights the versatility of FWF as a general bulk inorganic materials synthesis protocol.

摘要

优先考虑能源效率、最小化用水、可扩展性以及生成多种材料能力的可持续制造对于推进无机材料生产同时保持环境意识至关重要。然而,当前的制造实践尚未完全具备满足这些要求的能力。在此,我们描述了一种闪中闪焦耳加热(FWF)技术——一种非平衡、超快热传导方法——用于在环境条件下在5秒内制备十种过渡金属二硫属化物、三种第14族二硫属化物和九种非过渡金属二硫属化物材料。与其他合成方法相比,FWF在轻松实现克级可扩展性和可持续制造标准方面具有巨大优势。此外,FWF允许生产相选择性和单晶块状粉末,这是其他任何合成方法很少观察到的现象。此外,FWF制备的MoSe在摩擦学方面优于市售MoSe,展示了FWF材料的质量。原子替代和掺杂能力进一步突出了FWF作为一种通用块状无机材料合成方案的多功能性。

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