Tuning molecular self-assembly on bulk insulator surfaces by anchoring of the organic building blocks. 2013

Philipp Rahe, and Markus Kittelmann, and Julia L Neff, and Markus Nimmrich, and Michael Reichling, and Philipp Maass, and Angelika Kühnle
Department of Physics and Astronomy, 115 South 1400 East, The University of Utah, Salt Lake City, UT 84112-0830, USA. rahe@physics.utah.edu.

Molecular self-assembly constitutes a versatile strategy for creating functional structures on surfaces. Tuning the subtle balance between intermolecular and molecule-surface interactions allows structure formation to be tailored at the single-molecule level. While metal surfaces usually exhibit interaction strengths in an energy range that favors molecular self-assembly, dielectric surfaces having low surface energies often lack sufficient interactions with adsorbed molecules. As a consequence, application-relevant, bulk insulating materials pose significant challenges when considering them as supporting substrates for molecular self-assembly. Here, the current status of molecular self-assembly on surfaces of wide-bandgap dielectric crystals, investigated under ultrahigh vacuum conditions at room temperature, is reviewed. To address the major issues currently limiting the applicability of molecular self-assembly principles in the case of dielectric surfaces, a systematic discussion of general strategies is provided for anchoring organic molecules to bulk insulating materials.

UI MeSH Term Description Entries
D008670 Metals Electropositive chemical elements characterized by ductility, malleability, luster, and conductance of heat and electricity. They can replace the hydrogen of an acid and form bases with hydroxyl radicals. (Grant & Hackh's Chemical Dictionary, 5th ed) Metal
D008956 Models, Chemical Theoretical representations that simulate the behavior or activity of chemical processes or phenomena; includes the use of mathematical equations, computers, and other electronic equipment. Chemical Models,Chemical Model,Model, Chemical
D008958 Models, Molecular Models used experimentally or theoretically to study molecular shape, electronic properties, or interactions; includes analogous molecules, computer-generated graphics, and mechanical structures. Molecular Models,Model, Molecular,Molecular Model
D009930 Organic Chemicals A broad class of substances containing carbon and its derivatives. Many of these chemicals will frequently contain hydrogen with or without oxygen, nitrogen, sulfur, phosphorus, and other elements. They exist in either carbon chain or carbon ring form. Organic Chemical,Chemical, Organic,Chemicals, Organic
D003198 Computer Simulation Computer-based representation of physical systems and phenomena such as chemical processes. Computational Modeling,Computational Modelling,Computer Models,In silico Modeling,In silico Models,In silico Simulation,Models, Computer,Computerized Models,Computer Model,Computer Simulations,Computerized Model,In silico Model,Model, Computer,Model, Computerized,Model, In silico,Modeling, Computational,Modeling, In silico,Modelling, Computational,Simulation, Computer,Simulation, In silico,Simulations, Computer
D004553 Electric Conductivity The ability of a substrate to allow the passage of ELECTRONS. Electrical Conductivity,Conductivity, Electric,Conductivity, Electrical

Related Publications

Philipp Rahe, and Markus Kittelmann, and Julia L Neff, and Markus Nimmrich, and Michael Reichling, and Philipp Maass, and Angelika Kühnle
September 2009, Dalton transactions (Cambridge, England : 2003),
Philipp Rahe, and Markus Kittelmann, and Julia L Neff, and Markus Nimmrich, and Michael Reichling, and Philipp Maass, and Angelika Kühnle
September 2018, Physical chemistry chemical physics : PCCP,
Philipp Rahe, and Markus Kittelmann, and Julia L Neff, and Markus Nimmrich, and Michael Reichling, and Philipp Maass, and Angelika Kühnle
January 2015, Beilstein journal of nanotechnology,
Philipp Rahe, and Markus Kittelmann, and Julia L Neff, and Markus Nimmrich, and Michael Reichling, and Philipp Maass, and Angelika Kühnle
September 2011, Chemistry, an Asian journal,
Philipp Rahe, and Markus Kittelmann, and Julia L Neff, and Markus Nimmrich, and Michael Reichling, and Philipp Maass, and Angelika Kühnle
July 2019, Chemphyschem : a European journal of chemical physics and physical chemistry,
Philipp Rahe, and Markus Kittelmann, and Julia L Neff, and Markus Nimmrich, and Michael Reichling, and Philipp Maass, and Angelika Kühnle
January 2013, Chimia,
Philipp Rahe, and Markus Kittelmann, and Julia L Neff, and Markus Nimmrich, and Michael Reichling, and Philipp Maass, and Angelika Kühnle
January 2019, Molecular systems design & engineering,
Philipp Rahe, and Markus Kittelmann, and Julia L Neff, and Markus Nimmrich, and Michael Reichling, and Philipp Maass, and Angelika Kühnle
March 2014, Angewandte Chemie (International ed. in English),
Philipp Rahe, and Markus Kittelmann, and Julia L Neff, and Markus Nimmrich, and Michael Reichling, and Philipp Maass, and Angelika Kühnle
November 2007, Nature nanotechnology,
Philipp Rahe, and Markus Kittelmann, and Julia L Neff, and Markus Nimmrich, and Michael Reichling, and Philipp Maass, and Angelika Kühnle
December 2004, Chemical communications (Cambridge, England),
Copied contents to your clipboard!