Martínez-Carreón Maria J, Solís-Pomar Francisco, Fundora Abel, Gutiérrez-Lazos Claudio D, Mejía-Rosales Sergio, Fernández-Escamilla Hector N, Guerrero-Sánchez Jonathan, Meléndrez Manuel F, Pérez-Tijerina Eduardo
CICFIM Facultad de Ciencias Físico Matemáticas, Universidad Autónoma de Nuevo León, San Nicolás de los Garza, Nuevo León, 66455, Mexico.
Instituto Superior de Tecnologías y Ciencias Aplicadas (InSTEC). Universidad de La Habana, San Lázaro y L, Vedado La Habana, 10400, Cuba.
Beilstein J Nanotechnol. 2024 Jul 4;15:808-816. doi: 10.3762/bjnano.15.67. eCollection 2024.
Janus-type nanoparticles are important because of their ability to combine distinct properties and functionalities in a single particle, making them extremely versatile and valuable in various scientific, technological, and industrial applications. In this work, bimetallic silver-palladium Janus nanoparticles were obtained for the first time using the inert gas condensation technique. In order to achieve this, an original synthesis equipment built by Mantis Ltd. was modified by the inclusion of an additional magnetron in a second chamber, which allowed us to use two monometallic targets to sputter the two metals independently. With this arrangement, we could find appropriate settings at room temperature to promote the synthesis of bimetallic Janus nanoparticles. The structural properties of the resulting nanoparticles were investigated by transmission electron microscopy (TEM), and the chemical composition was analyzed by TEM energy dispersive spectroscopy (TEM-EDS), which, together with structural analysis, confirmed the presence of Janus-type nanostructures. Results of molecular dynamics and TEM simulations show that the differences between the crystalline structures of the Pd and Ag regions observed in the TEM micrographs can be explained by small mismatches in the orientations of the two regions of the particle. A density functional theory structural aims to understand the atomic arrangement at the interface of the Janus particle.
双面型纳米粒子因其能够在单个粒子中结合不同的性质和功能而显得重要,这使得它们在各种科学、技术和工业应用中极具通用性和价值。在这项工作中,首次使用惰性气体凝聚技术制备了双金属银 - 钯双面纳米粒子。为了实现这一目标,由Mantis Ltd.制造的原始合成设备进行了改进,在第二个腔室中增加了一个额外的磁控管,这使我们能够使用两个单金属靶材分别溅射两种金属。通过这种设置,我们能够在室温下找到合适的条件来促进双金属双面纳米粒子的合成。通过透射电子显微镜(TEM)研究了所得纳米粒子的结构性质,并通过TEM能量色散光谱(TEM - EDS)分析了化学成分,这与结构分析一起证实了双面型纳米结构的存在。分子动力学和TEM模拟结果表明,在TEM显微照片中观察到的Pd和Ag区域晶体结构之间的差异可以通过粒子两个区域取向的微小不匹配来解释。密度泛函理论结构旨在了解双面粒子界面处的原子排列。