Gubicza Jenő, Jenei Péter, Han Gigap, Hung Pham-Tran, Song Youngseok, Park Dahye, Szabó Ábel, Kádár Csilla, Kim Jae-Hun, Choe Heeman
Department of Materials Physics, Eötvös Loránd University, P.O. Box 32, H-1518 Budapest, Hungary.
School of Materials Science and Engineering, Kookmin University, 77 Jeongneung-ro, Seongbuk-gu, Seoul 02707, Korea.
Materials (Basel). 2021 May 20;14(10):2691. doi: 10.3390/ma14102691.
Cu nanofoams are promising materials for a variety of applications, including anodes in high-performance lithium-ion batteries. The high specific surface area of these materials supports a high capacity and porous structure that helps accommodate volume expansion which occurs as batteries are charged. One of the most efficient methods to produce Cu nanofoams is the dealloying of Cu alloy precursors. This process often yields nanofoams that have low strength, thus requiring additional heat treatment to improve the mechanical properties of Cu foams. This paper provides the effects of heat treatment on the microstructures, mechanical properties, and electrochemical performance of Cu nanofoams. Annealing was conducted under both inert and oxidizing atmospheres. These studies ultimately reveal the underlying mechanisms of ligament coarsening during heat treatment.
铜纳米泡沫是用于多种应用的有前景的材料,包括高性能锂离子电池的阳极。这些材料的高比表面积支持高容量和多孔结构,有助于适应电池充电时发生的体积膨胀。生产铜纳米泡沫最有效的方法之一是对铜合金前驱体进行脱合金化。这个过程通常会产生强度低的纳米泡沫,因此需要额外的热处理来改善铜泡沫的机械性能。本文提供了热处理对铜纳米泡沫的微观结构、机械性能和电化学性能的影响。在惰性和氧化气氛下都进行了退火。这些研究最终揭示了热处理过程中韧带粗化的潜在机制。