4.8 Article

Surface-Anisotropic Janus Silicon Quantum Dots via Masking on 2D Silicon Nanosheets

期刊

ADVANCED MATERIALS
卷 33, 期 38, 页码 -

出版社

WILEY-V C H VERLAG GMBH
DOI: 10.1002/adma.202100288

关键词

Janus particles; monolayer; silicane; silicon nanocrystals; silicon nanosheets; silicon quantum dots; surface anisotropic

资金

  1. TUM IGSSE
  2. Natural Sciences and Engineering Research Council of Canada (NSERC Discovery Grant program) [RGPIN-2015-03896]
  3. NSERC CREATE [CREATE-463990-2015]
  4. Future Energy System (FES) - Canada First Research Excellence Fund (CFREF)
  5. Projekt DEAL
  6. Deutsche Forschungsgemeinschaft (DFG, German Research Foundation) [245845833, IRTG 2022]

向作者/读者索取更多资源

The study introduces a novel synthesis method for surface-anisotropic silicon quantum dots on a 2D silicon nanosheet, showing potential in self-assembly, microelectronics, and biology. By exposing only one side of the QDs and introducing two different functional groups, the unique optoelectronic properties of the SiQDs are retained. The anisotropic morphology is confirmed through the aggregation behavior of amphiphilic Janus SiQDs at the water-hexane interface, demonstrating the versatility of these nanoparticles.
Surface-anisotropic nanoparticles represent a new class of materials that shows potential in a variety of applications, including self-assembly, microelectronics, and biology. Here, the first synthesis of surface-anisotropic silicon quantum dots (SiQDs), obtained through masking on 2D silicon nanosheets, is presented. SiQDs are deposited on the 2D substrate, thereby exposing only one side of the QDs, which is functionalized through well-established hydrosilylation procedures. The UV-sensitive masking substrate is removed through UV-irradiation, which simultaneously initiates the hydrosilylation of a second substrate, thereby introducing a second functional group to the other side of the now free-standing SiQDs. This renders surface-anisotropic SiQDs that have two different functional groups on either side of the particle. This method can be used to introduce a variety of functional groups including hydrophilic and hydrophobic substrates, while the unique optoelectronic properties of the SiQDs remain unaffected. The anisotropic morphology of the QDs is confirmed through the aggregation behavior of amphiphilic Janus SiQDs at the interface of water and hexane. Additionally, anisotropic SiQDs are used to produce the first controlled (sub)monolayer of SiQDs on a gold wafer.

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