Soft 2D nanoarchitectonics is presented as a framework for constructing functional two-dimensional materials and systems with soft components. It combines atomic or molecular control, self-organization, and field-controlled organization.
First-pass extracted concept
soft 2D nanoarchitectonics
Aliases
nanoarchitectonics
Extracted Explainers
What the tool is doing
What problem it solves
What it does not solve
Evidence Snippets
Supporting Sources
Linked Claims
A film of living cells has been obtained at a liquid-liquid interface within the soft 2D nanoarchitectonics context.
A film of living cells has also been obtained at a liquid–liquid interface.
Sheets of organic molecules held together by weak forces such as hydrogen bonding or metal coordination have been constructed to function as organic crystalline semiconductors, molecular machines, or receptors.
Sheets composed of organic molecules held together by weak forces, typically hydrogen bonding or metal coordination, have been constructed that serve as organic crystalline semiconductors, molecular machines, or receptors.
Soft 2D nanoarchitectonics is presented as promising for applications ranging from organic electronics to biomaterials.
These achievements show that soft 2D nanoarchitectonics holds great promise for a variety of fields ranging from organic electronics to biomaterials.
The review organizes soft 2D nanoarchitectonic examples into three categories based on 2D spatial density and motional freedom.
These examples are selected according to the following three categories on the basis of 2D spatial density and motional freedom
Nanoarchitectonics is presented as a paradigm that unifies nanotechnology with supramolecular chemistry, self-assembly, self-organization, materials technology, and biotechnology.
Nanoarchitectonics is a new paradigm to combine and unify nanotechnology with other sciences and technologies, such as supramolecular chemistry, self-assembly, self-organization, materials technology for manipulation of the size of material objects, and even biotechnology for hybridization with bio-components.
Scientific views on soft 2D nanomaterials are less established than those on rigid 2D materials.
Scientific views on soft 2D nanomaterials are not fully established compared with those on rigid 2D materials.
The nanoarchitectonic concept uses a synergistic combination of atomic or molecular control, self-organization, and field-controlled organization in materials production.
The nanoarchitectonic concept leads to the synergistic combination of various methodologies in materials production, including atomic/molecular-level control, self-organization, and field-controlled organization.