Wang Zhao, Schmalbach Kevin M, Penn R Lee, Poerschke David, Antoniou Antonia, Mara Nathan A, Stein Andreas
Department of Chemistry, University of Minnesota, 207 Pleasant Street SE, Minneapolis, Minnesota 55455, United States.
Department of Chemical Engineering and Materials Science, University of Minnesota, 421 Washington Avenue SE, Minneapolis, Minnesota 55455, United States.
ACS Appl Mater Interfaces. 2021 Jul 14;13(27):32126-32135. doi: 10.1021/acsami.1c06894. Epub 2021 Jul 2.
Metal-ceramic nanocomposites exhibit exceptional mechanical properties with a combination of high strength, toughness, and hardness that are not achievable in monolithic metals or ceramics, which make them valuable for applications in fields such as the aerospace and automotive industries. In this study, interpenetrating nanocomposites of three-dimensionally ordered macroporous (3DOM) tungsten-silicon oxycarbide (W-SiOC) were prepared, and their mechanical properties were investigated. In these nanocomposites, the crystalline tungsten and amorphous silicon oxycarbide phases both form continuous and interpenetrating networks, with some discrete free carbon nanodomains. The W-SiOC material inherits the periodic structure from its 3DOM W matrix, and this periodic structure can be maintained up to 1000 °C. In situ SEM micropillar compression tests demonstrated that the 3DOM W-SiOC material could sustain a maximum average stress of 1.1 GPa, a factor of 22 greater than that of the 3DOM W matrix, resulting in a specific strength of 640 MPa/(Mg/m) at 30 °C. Deformation behavior of the developed 3DOM nanocomposite in a wide temperature range (30-575 °C) was investigated. The deformation mode of 3DOM W-SiOC exhibited a transition from fracture-dominated deformation at low temperatures to plastic deformation above 425 °C.
金属陶瓷纳米复合材料展现出卓越的机械性能,兼具高强度、韧性和硬度,这是单一金属或陶瓷无法实现的,这使得它们在航空航天和汽车工业等领域的应用中具有重要价值。在本研究中,制备了三维有序大孔(3DOM)钨-碳氧化硅(W-SiOC)的互穿纳米复合材料,并对其机械性能进行了研究。在这些纳米复合材料中,结晶钨相和非晶态碳氧化硅相均形成连续且互穿的网络结构,同时存在一些离散的游离碳纳米区域。W-SiOC材料继承了其3DOM W基体的周期性结构,并且这种周期性结构在高达1000°C时仍可保持。原位扫描电子显微镜微柱压缩试验表明,3DOM W-SiOC材料能够承受的最大平均应力为1.1 GPa,比3DOM W基体高出22倍,在30°C时的比强度为640 MPa/(Mg/m)。研究了所制备的3DOM纳米复合材料在较宽温度范围(30 - 575°C)内的变形行为。3DOM W-SiOC的变形模式表现出从低温下以断裂为主的变形到425°C以上的塑性变形的转变。