Liu Kai, Qiao Zhun, Gao Chuanbo
Frontier Institute of Science and Technology, Xi'an Jiaotong University, Xi'an 710054, China.
Molecules. 2023 Jul 28;28(15):5720. doi: 10.3390/molecules28155720.
A bimetallic core-shell nanostructure is a versatile platform for achieving intriguing optical and catalytic properties. For a long time, this core-shell nanostructure has been limited to ones with noble metal cores. Otherwise, a galvanic replacement reaction easily occurs, leading to hollow nanostructures or completely disintegrated ones. In the past few years, great efforts have been devoted to preventing the galvanic replacement reaction, thus creating an unconventional class of core-shell nanostructures, each containing a less-stable-metal core and a noble metal shell. These new nanostructures have been demonstrated to show unique optical and catalytic properties. In this work, we first briefly summarize the strategies for synthesizing this type of unconventional core-shell nanostructures, such as the delicately designed thermodynamic control and kinetic control methods. Then, we discuss the effects of the core-shell nanostructure on the stabilization of the core nanocrystals and the emerging optical and catalytic properties. The use of the nanostructure for creating hollow/porous nanostructures is also discussed. At the end of this review, we discuss the remaining challenges associated with this unique core-shell nanostructure and provide our perspectives on the future development of the field.
双金属核壳纳米结构是实现有趣光学和催化性能的通用平台。长期以来,这种核壳纳米结构仅限于具有贵金属核的结构。否则,容易发生电化学生成置换反应,导致形成中空纳米结构或完全分解的结构。在过去几年中,人们付出了巨大努力来防止电化学生成置换反应,从而创造出一类非常规的核壳纳米结构,每个结构都包含一个稳定性较差的金属核和一个贵金属壳。这些新的纳米结构已被证明具有独特的光学和催化性能。在这项工作中,我们首先简要总结合成这类非常规核壳纳米结构的策略,如精心设计的热力学控制和动力学控制方法。然后,我们讨论核壳纳米结构对核心纳米晶体稳定性以及新出现的光学和催化性能的影响。还讨论了利用该纳米结构创建中空/多孔纳米结构的情况。在本综述结尾,我们讨论与这种独特核壳纳米结构相关的剩余挑战,并对该领域的未来发展提供我们的观点。