Jung Yoonjae, Kim Yoonhee, Lee Yeonhee, Son Jiwoong, Lim Mihye, Nam Jwa-Min
Department of Chemistry, Seoul National University, Seoul 08826, Republic of Korea.
Samsung Advanced Institute of Technology, Samsung Electronics, Suwon-si 16678, Republic of Korea.
J Am Chem Soc. 2024 Apr 17;146(15):10591-10598. doi: 10.1021/jacs.4c00073. Epub 2024 Apr 3.
Ag nanoparticles have garnered significant attention for their excellent plasmonic properties and potential use as plasmonic cavities, primarily because of their intrinsically low ohmic losses and optical properties in the visible range. These are particularly crucial in systems involving quantum dots that absorb light at low wavelengths, where the need for a high threshold energy of interband transitions necessitates the incorporation of Ag nanostructures. However, the synthesis of Ag nanoparticles still encounters challenges in achieving structural uniformity and monodispersity, along with chemical stability, consequentially inducing inconsistent and poorly reliable optical responses. Here, we present a two-step approach for synthesizing highly uniform spherical Ag nanoparticles involving depletion-induced flocculation and Cu(II)-mediated oxidative etching. We found that the selective flocculation of multitwinned Ag nanocrystals significantly enhances the uniformity of the resulting Ag nanostructures, leaving behind only single-crystalline and single-twinned nanostructures. Subsequent oxidative etching, in which cupric ions are directly involved in the reaction, was designed based on Pourbaix diagrams to proceed following thermodynamically favorable states and circumvent the generation of reactive chemical species such as HO. This leads to perfectly spherical shapes of final Ag nanoparticles with a synthetic yield of 99.5% and additionally reduces the overall reaction time. Furthermore, we explore the potential applications of these monodisperse Ag nanospheres as uniform plasmonic cavities. The fabricated Ag nanosphere films uniformly enhanced the photoluminescence of InP/ZnSe/ZnS quantum dots, showcasing their capabilities in exhibiting consistent plasmonic responses across a large area.
银纳米颗粒因其优异的等离子体特性以及作为等离子体腔的潜在用途而备受关注,主要是因为其固有的低欧姆损耗和在可见光范围内的光学特性。在涉及吸收低波长光的量子点的系统中,这些特性尤为关键,因为带间跃迁需要高阈值能量,这就需要引入银纳米结构。然而,银纳米颗粒的合成在实现结构均匀性和单分散性以及化学稳定性方面仍面临挑战,从而导致光学响应不一致且可靠性差。在此,我们提出一种两步法来合成高度均匀的球形银纳米颗粒,该方法涉及耗尽诱导絮凝和铜(II)介导的氧化蚀刻。我们发现,多重孪晶银纳米晶体的选择性絮凝显著提高了所得银纳米结构的均匀性,只留下单晶和单孪晶纳米结构。随后的氧化蚀刻基于Pourbaix图进行设计,其中铜离子直接参与反应,以遵循热力学有利状态进行,避免产生诸如HO等活性化学物质。这使得最终的银纳米颗粒呈现出完美的球形,合成产率为99.5%,并进一步缩短了整体反应时间。此外,我们探索了这些单分散银纳米球作为均匀等离子体腔的潜在应用。制备的银纳米球薄膜均匀地增强了InP/ZnSe/ZnS量子点的光致发光,展示了它们在大面积上表现出一致等离子体响应的能力。