Search engine for discovering works of Art, research articles, and books related to Art and Culture
ShareThis
Javascript must be enabled to continue!

Layered Intercalation Materials

View through CrossRef
Abstract2D layered materials typically feature strong in‐plane covalent chemical bonding within each atomic layer and weak out‐of‐plane van der Waals (vdW) interactions between adjacent layers. The non‐bonding nature between neighboring layers naturally results in a vdW gap, in which various foreign species may be inserted without breaking the in‐plane covalent bonds. By tailoring the composition, size, structure, and electronic properties of the intercalated guest species and the hosting layered materials, an expansive family of layered intercalation materials may be produced with highly variable compositional and structural features as well as widely tunable physical/chemical properties, invoking unprecedented opportunities in fundamental studies of property modulation and potential applications in diverse technologies, including electronics, optics, superconductors, thermoelectrics, catalysis, and energy storage. Here, the principles and protocols for various intercalation methods, including wet chemical intercalation, gas‐phase intercalation, electrochemical intercalation, and ion‐exchange intercalation, are comprehensively reviewed and how the intercalated species alter the crystal structure and the interlayer coupling of the host 2D layered materials, introducing unusual physical and chemical properties and enabling devices with superior performance or unique functions, is discussed. To conclude, a brief summary on future research opportunities and emerging challenges in the layered intercalation materials is given.
Title: Layered Intercalation Materials
Description:
Abstract2D layered materials typically feature strong in‐plane covalent chemical bonding within each atomic layer and weak out‐of‐plane van der Waals (vdW) interactions between adjacent layers.
The non‐bonding nature between neighboring layers naturally results in a vdW gap, in which various foreign species may be inserted without breaking the in‐plane covalent bonds.
By tailoring the composition, size, structure, and electronic properties of the intercalated guest species and the hosting layered materials, an expansive family of layered intercalation materials may be produced with highly variable compositional and structural features as well as widely tunable physical/chemical properties, invoking unprecedented opportunities in fundamental studies of property modulation and potential applications in diverse technologies, including electronics, optics, superconductors, thermoelectrics, catalysis, and energy storage.
Here, the principles and protocols for various intercalation methods, including wet chemical intercalation, gas‐phase intercalation, electrochemical intercalation, and ion‐exchange intercalation, are comprehensively reviewed and how the intercalated species alter the crystal structure and the interlayer coupling of the host 2D layered materials, introducing unusual physical and chemical properties and enabling devices with superior performance or unique functions, is discussed.
To conclude, a brief summary on future research opportunities and emerging challenges in the layered intercalation materials is given.

Related Results

GICs and Batteries
GICs and Batteries
Intercalation can be defined as the process of inserting atoms or molecules (guest chemical species) between layers in a host material with layered structure such as graphite. Inte...
Chemical pre-intercalation synthesis approach for novel layered cathode materials for Li-ion and beyond Li-ion batteries
Chemical pre-intercalation synthesis approach for novel layered cathode materials for Li-ion and beyond Li-ion batteries
Beyond-lithium ion (BLI) alkali ion-based batteries are rising in interest among researchers because of their utilization of more abundant, cost-effective charge carriers, includin...
(Invited) Intercalation Chemistry of Oxides
(Invited) Intercalation Chemistry of Oxides
The lithium-ion battery technology is based on intercalation chemistry phenomenon. The 2019 Chemistry Nobel Laurette Stanley Whittingham was the first to show in 1976 how the inter...
Synthesis and Intercalation Chemistry
Synthesis and Intercalation Chemistry
Alkali metal GICs are the best known donor type GICs, since they are easily prepared and their brilliant gold color for stage-1 GICs has attracted scientists working in intercalati...
Layered Materials: Oxides and Hydroxides
Layered Materials: Oxides and Hydroxides
Abstract Layered compounds exhibit various properties based on their layered structures. The most typical chemical property is the intercalation reaction, which most laye...
Organic/Inorganic Hybrid Layered Electrodes Via Chemical Pre-Intercalation Approach for Intercalation Cathodes
Organic/Inorganic Hybrid Layered Electrodes Via Chemical Pre-Intercalation Approach for Intercalation Cathodes
Bilayered δ-V2O5, built from double layers of VOx polyhedra separated by a large interlayer spacing of 11.5 Å, demonstrates advanced electrochemical behavior as a cathode material ...
Preparation and characterization of poly(vinyl chloride)/organoclay nanocomposites by in situ intercalation
Preparation and characterization of poly(vinyl chloride)/organoclay nanocomposites by in situ intercalation
AbstractIn this article, poly(vinyl chloride) (PVC)–organoclay nanocomposites were prepared via in situ polymerization intercalation and melt blending intercalation, respectively. ...
Analytical Application of Intercalation Processes
Analytical Application of Intercalation Processes
An analisys of alloy directly on surface example is interesting for many applications. Electrochemical methods, used in solving this problem, provide variability, low cost, minimal...

Back to Top