TY - JOUR
T1 - Hydrogen-bonded siloxane liquid crystals for hybrid nanomaterials
AU - Nickmans, Koen
AU - Jansma, Sjoerd O.
AU - Hey, Daniela
AU - Velpula, Gangamallaiah
AU - Teyssandier, Joan
AU - De Feyter, Steven
AU - Schenning, Albert P.H.J.
PY - 2018/10
Y1 - 2018/10
N2 - The self-assembly of molecular inorganic/organic hybrid building blocks into ordered hierarchical nanomaterials with a tunable morphology is an enormous challenge. Here, we describe the synthesis and characterization of a novel liquid crystalline hydrogen-bonding hepta(dimethylsiloxane) azobenzene carboxylic acid dimer. This inorganic/organic hybrid dimer forms sub-5 nm lamellar features in the bulk and at the liquid solid interface. When mixed with a complementary hydrogen-bonding disk-shaped small molecule, a columnar hexagonal phase is formed. When adding a block copolymer containing hydrogen bond-accepting moieties, a hierarchical nanostructured material is obtained with a hexagonal columnar arrangement perpendicular to lamellae super structure. Our supramolecular approach shows that hierarchical hybrid nanomaterials can be fabricated with controlled properties which is appealing for applications such as nanoporous materials, organic electronics, and nanolithography.
AB - The self-assembly of molecular inorganic/organic hybrid building blocks into ordered hierarchical nanomaterials with a tunable morphology is an enormous challenge. Here, we describe the synthesis and characterization of a novel liquid crystalline hydrogen-bonding hepta(dimethylsiloxane) azobenzene carboxylic acid dimer. This inorganic/organic hybrid dimer forms sub-5 nm lamellar features in the bulk and at the liquid solid interface. When mixed with a complementary hydrogen-bonding disk-shaped small molecule, a columnar hexagonal phase is formed. When adding a block copolymer containing hydrogen bond-accepting moieties, a hierarchical nanostructured material is obtained with a hexagonal columnar arrangement perpendicular to lamellae super structure. Our supramolecular approach shows that hierarchical hybrid nanomaterials can be fabricated with controlled properties which is appealing for applications such as nanoporous materials, organic electronics, and nanolithography.
KW - hierarchical structures
KW - hydrogen bonds
KW - liquid crystals
KW - nanomaterials
KW - siloxane molecules
KW - supramolecular chemistry
UR - http://www.scopus.com/inward/record.url?scp=85053700466&partnerID=8YFLogxK
U2 - 10.1002/hlca.201800130
DO - 10.1002/hlca.201800130
M3 - Article
AN - SCOPUS:85053700466
SN - 0018-019X
VL - 101
JO - Helvetica Chimica Acta
JF - Helvetica Chimica Acta
IS - 10
M1 - e1800130
ER -