Koch N. Supramolecular Materials for Opto-Electronics 2015
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Koch N. Supramolecular Materials for Opto-Electronics 2015
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The power of supramolecular assembly strategies, where mostly non covalent interactions between individual building blocks are exploited, to form well-defined two- and three-dimensional architectures is impressive. Careful design of molecules to facilitate directed hydrogen-bonding, p–p, and electrostatic interactions can lead to hierarchically ordered structures spanning the nano- to the macroscale. In addition, covalent bonds between molecules are used to form supramolecular assemblies, and the properties of the subunits can be largely retained by keeping their direct electronic coupling strength low. In an overarching scheme, complex multi-component structures are assembled first and subsequently locked into position by initiating covalent bonds. Achieving an appropriate balance of all inter molecular forces to reach the desired bulk structures is challenging.
Self-assembled Supramolecular Materials in Organic Electronics
Multicomponent Assembly Strategies for Supramolecular Systems
Low-Dimensional Supramolecular Assemblies on Surfaces
Self-Assembled Mono- and Multilayers for Functional Opto-Electronic Devices
Amphiphilic Design for Supramolecular Materials with Opto-Electronic Functions
Chiral Supramolecular Structures as Spin Filters
Solution Processed Multilayer Organic Light Emitting Diodes
Concepts and Modeling for Charge Transport in Organic Electronic Materials
Simulations of Morphology and Charge Transport in Supramolecular Organic Materials