Wang Xinda, Guo Wei, Zhang Hongqiang, Peng Peng
School of Mechanical Engineering and Automation, Beihang University, Beijing 100191, P. R. China.
Department of Mechanical and Mechatronics Engineering, University of Waterloo, Waterloo, Ontario N2L 3G1, Canada.
ACS Appl Mater Interfaces. 2021 Aug 18;13(32):38637-38646. doi: 10.1021/acsami.1c12936. Epub 2021 Aug 6.
Silver foams with high porosity and electrical conductivity have many potential applications in energy storage, catalysis, and fuel cells. However, its application is largely hindered by the low efficiency of complicated synthesis processes. In this work, a facile and rapid bottom-up fabrication of silver foams in an aqueous solution allowing large-scale production through oriented and additive nanojoining of silver nanoplate building blocks is reported. Self-assembling of as-grown silver nanoplates facilitates the oriented nanoscale joining to align the atomic lattice, and the local additive of silver promotes diffusion and interconnection at room temperature to realize a rapid synthesis process. The freeze-dried silver foam exhibits a porosity of 95.45%, an ultralow density of 61 mg·cm, low thermal conductivity of 0.29 W·m·K, and high electrical conductivity of 8086 S·m. This oriented and locally additive nanojoining process presents a new strategy to fabricate silver foams that may also inspire the fabrications of other metal foams.
具有高孔隙率和导电性的银泡沫在能量存储、催化和燃料电池等领域有许多潜在应用。然而,其应用在很大程度上受到复杂合成过程低效率的阻碍。在这项工作中,报道了一种在水溶液中简便快速的自下而上制备银泡沫的方法,该方法通过银纳米片构建块的定向和加成纳米连接实现大规模生产。生长的银纳米片的自组装促进了定向纳米级连接以对齐原子晶格,并且银的局部添加促进了室温下的扩散和互连,从而实现快速合成过程。冷冻干燥的银泡沫具有95.45%的孔隙率、61 mg·cm的超低密度、0.29 W·m·K的低导热率和8086 S·m的高电导率。这种定向和局部加成纳米连接过程为制备银泡沫提供了一种新策略,这也可能启发其他金属泡沫的制备。