Zhu Yan Qiu, Sekine Toshimori, Li Yan Hui, Fay Michael W, Zhao Yi Min, Patrick Poa C H, Wang Wen Xin, Roe Martin J, Brown Paul D, Fleischer Niles, Tenne Reshef
School of Mechanical, Materials and Manufacturing Engineering, and School of Chemistry, University of Nottingham, University Park Nottingham NG7 2RD, UK.
J Am Chem Soc. 2005 Nov 23;127(46):16263-72. doi: 10.1021/ja054715j.
The excellent shock-absorbing performance of WS2 and MoS2 nanoparticles with inorganic fullerene-like structures (IFs) under very high shock wave pressures of 25 GPa is described. The combined techniques of X-ray diffraction, Raman spectroscopy, X-ray photoelectron spectroscopy, thermal analysis, and transmission electron microscopy have been used to evaluate the diverse, intriguing features of shock recovered IFs, of interest for their tribological applications, thereby allowing improved understanding of their antishock behavior and structure-property relationships. Two possible failure mechanisms are proposed and discussed. The supershock-absorbing ability of the IF-WS2 enables them to survive pressures up to 25 GPa accompanied with concurrent temperatures of up to 1000 degrees C without any significant structural degradation or phase change making them probably the strongest cage molecules now known.
描述了具有无机富勒烯状结构(IFs)的WS2和MoS2纳米颗粒在25 GPa的极高冲击波压力下的优异减震性能。利用X射线衍射、拉曼光谱、X射线光电子能谱、热分析和透射电子显微镜等联合技术,评估了冲击恢复后的IFs的各种有趣特性,这些特性因其摩擦学应用而备受关注,从而有助于更好地理解它们的抗冲击行为以及结构-性能关系。提出并讨论了两种可能的失效机制。IF-WS2的超强减震能力使它们能够在高达25 GPa的压力和高达1000摄氏度的同时温度下存活,而不会发生任何明显的结构降解或相变,这可能使它们成为目前已知最强的笼状分子。