Electrochemical molecular intercalation and exfoliation of solution-processable two-dimensional crystals
Language English Country Great Britain, England Media print-electronic
Document type Journal Article, Review, Research Support, Non-U.S. Gov't
PubMed
37525001
DOI
10.1038/s41596-023-00865-0
PII: 10.1038/s41596-023-00865-0
Knihovny.cz E-resources
- MeSH
- Electrochemistry MeSH
- Phosphorus MeSH
- Graphite * MeSH
- Microscopy, Atomic Force MeSH
- Nanoparticles * MeSH
- Publication type
- Journal Article MeSH
- Research Support, Non-U.S. Gov't MeSH
- Review MeSH
- Names of Substances
- Phosphorus MeSH
- Graphite * MeSH
Electrochemical molecular intercalation of layered semiconducting crystals with organic cations followed by ultrasonic exfoliation has proven to be an effective approach to producing a rich family of organic/inorganic hybrid superlattices and high-quality, solution-processable 2D semiconductors. A traditional method for exfoliating 2D crystals relies on the intercalation of inorganic alkali metal cations. The organic cations (e.g., alkyl chain-substituted quaternary ammonium cations) are much larger than their inorganic counterparts, and the bulky molecular structure endows distinct intercalation and exfoliation chemistry, as well as molecular tunability. By using this protocol, many layered 2D crystals (including graphene, black phosphorus and versatile metal chalcogenides) can be electrochemically intercalated with organic quaternary alkylammonium cations. Subsequent solution-phase exfoliation of the intercalated compounds is realized by regular bath sonication for a short period (5-30 min) to produce free-standing, thin 2D nanosheets. It is also possible to graft additional ligands on the nanosheet surface. The thickness of the exfoliated nanosheets can be measured by using atomic force microscopy and Raman spectroscopy. Modifying the chemical structure and geometrical configuration of alkylammonium cations results in different exfoliation behavior and a family of versatile organic/inorganic hybrid superlattices with tunable physical/chemical properties. The whole protocol takes ~6 h for the successful production of stable, ultrathin 2D nanosheet dispersion in solution and another 11 h for depositing thin films and transferring them onto an arbitrary surface. This protocol does not require expertise beyond basic electrochemistry knowledge and conventional colloidal nanocrystal synthesis and processing.
California NanoSystems Institute University of California Los Angeles Los Angeles CA USA
Department of Chemistry and Biochemistry University of California Los Angeles Los Angeles CA USA
Department of Materials Science and Engineering City University of Hong Kong Kowloon Hong Kong China
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