Zhu Dezhi, Yan Jianfeng, Xie Jiawang, Liang Zhenwei, Bai Hailin
State Key Laboratory of Tribology, Department of Mechanical Engineering, Tsinghua University, Beijing 100084, China.
ACS Nano. 2021 Aug 24;15(8):13140-13147. doi: 10.1021/acsnano.1c02570. Epub 2021 Jul 27.
Metallic nanoparticles (NPs) play a significant role in nanocatalytic systems, which are important for clean energy conversion, storage, and utilization. Laser fabrication of metallic NPs relying on light-matter interactions provides many opportunities. It is essential to study the atomic structure transformation of nonactive monocrystalline metallic NPs for practical applications. The high-density stacking faults were fabricated in monocrystalline Au NPs through tuning the ultrafast laser-induced relaxation dynamics, and the thermal and dynamic stress effects on the atomic structure transformation were revealed. The atomic structure transformation mainly arises from the thermal effect, and the dynamic stress distribution induced by local energy deposition gives rise to the generation of stacking faults. Au NPs with abundant stacking faults show enhanced surface activity owing to their low coordination number. We suggest that this work expands the knowledge of laser-metallic nanomaterial interactions and provides a method for designing metallic NPs for a wide range of applications.
金属纳米颗粒(NPs)在纳米催化体系中发挥着重要作用,这对于清洁能源的转换、存储和利用至关重要。基于光与物质相互作用的金属纳米颗粒的激光制造提供了许多机会。对于实际应用而言,研究非活性单晶金属纳米颗粒的原子结构转变至关重要。通过调节超快激光诱导的弛豫动力学,在单晶金纳米颗粒中制造出了高密度堆垛层错,并揭示了热和动态应力对原子结构转变的影响。原子结构转变主要源于热效应,局部能量沉积引起的动态应力分布导致了堆垛层错的产生。具有丰富堆垛层错的金纳米颗粒由于其低配位数而表现出增强的表面活性。我们认为这项工作扩展了对激光与金属纳米材料相互作用的认识,并提供了一种设计用于广泛应用的金属纳米颗粒的方法。