High resolution scanning tunneling microscopy has been applied to investigate adsorption and self-assembly of large organic molecules on the TiO(2)(011) surface. The (011) face of the rutile titania has been rarely examined in this context. With respect to possible industrial applications of rutile, quite often in a powder form, knowledge on behavior of organic molecules on that face is required. In the presented study we fill in the gap and report on experiments focused on the self-assembly of organic nanostructures on the TiO(2)(011) surface. We use three different kinds of organic molecules of potential interest in various applications, namely, PTCDA and CuPc representing flat, planar stacking species, and Violet Landers specially design...
ABSTRACT: A knowledge of adsorption behaviors of oxygen on the model system of the reduced rutile Ti...
Atomic resolution scanning tunneling microscopy (STM), noncontact atomic force microscopy (NC-AFM), ...
Surface chemistry studies of two transition-metal oxides: titanium oxide and iron oxide are presente...
Behavior of large organic molecules equipped with spacer groups (Violet Landers, VL) on the TiO(2)(1...
Self-organization of 1,4-benzenedicarboxylic acid molecules (terephthalic acid, TPA) on a rutile TiO...
The structure of terephthalic acid (TPA) molecules adsorbed on rutile TiO2(110)-(1 × 1) has been inv...
The interaction of organic molecules with titanium dioxide surfaces has been the subject of many stu...
The interaction of organic molecules with titanium dioxide surfaces has been the subject of many stu...
The adsorption behavior of tin phthalocyanine (SnPc) molecules on rutile TiO_{2}(110) was studied by...
Understanding the structure and properties of TiO₂ surfaces is critical to achieve a better understa...
While Scanning Tunneling Microscopy (STM) has evolved as an ideal tool to study surface chemistry at...
The interaction of organic molecules and titanium dioxide (TiO2) plays a crucial role in many indust...
The structures and properties of rutile (1x1) and (1x2) TiO2(110) surfaces are studied using low ene...
Trabajo presentado en la IX edición de GEFES, celebrada en Cuenca del 13 al 15 de enero de 2016.Unde...
Scanning tunneling microscopy (STM) is demonstrated to be a powerful tool to characterize adsorption...
ABSTRACT: A knowledge of adsorption behaviors of oxygen on the model system of the reduced rutile Ti...
Atomic resolution scanning tunneling microscopy (STM), noncontact atomic force microscopy (NC-AFM), ...
Surface chemistry studies of two transition-metal oxides: titanium oxide and iron oxide are presente...
Behavior of large organic molecules equipped with spacer groups (Violet Landers, VL) on the TiO(2)(1...
Self-organization of 1,4-benzenedicarboxylic acid molecules (terephthalic acid, TPA) on a rutile TiO...
The structure of terephthalic acid (TPA) molecules adsorbed on rutile TiO2(110)-(1 × 1) has been inv...
The interaction of organic molecules with titanium dioxide surfaces has been the subject of many stu...
The interaction of organic molecules with titanium dioxide surfaces has been the subject of many stu...
The adsorption behavior of tin phthalocyanine (SnPc) molecules on rutile TiO_{2}(110) was studied by...
Understanding the structure and properties of TiO₂ surfaces is critical to achieve a better understa...
While Scanning Tunneling Microscopy (STM) has evolved as an ideal tool to study surface chemistry at...
The interaction of organic molecules and titanium dioxide (TiO2) plays a crucial role in many indust...
The structures and properties of rutile (1x1) and (1x2) TiO2(110) surfaces are studied using low ene...
Trabajo presentado en la IX edición de GEFES, celebrada en Cuenca del 13 al 15 de enero de 2016.Unde...
Scanning tunneling microscopy (STM) is demonstrated to be a powerful tool to characterize adsorption...
ABSTRACT: A knowledge of adsorption behaviors of oxygen on the model system of the reduced rutile Ti...
Atomic resolution scanning tunneling microscopy (STM), noncontact atomic force microscopy (NC-AFM), ...
Surface chemistry studies of two transition-metal oxides: titanium oxide and iron oxide are presente...