International audienceThe stabilization of crystal phases and nanostructured morphologies is an essential topic in application-driven design of mesoporous materials. Many applications, e.g. catalysis, require high temperature and humidity. Typical metal oxides transform under such conditions from a metastable, low crystal-line material into a thermodynamically more favorable form, i.e. from ferrihy-drite into hematite in the case of iron oxide. The harsh conditions induce also a growth of the crystallites constituting pore walls, which results in sintering and finally collapse of the porous network. Herein, a new method to stabi-lize mesoporous templated metal oxides against sintering and pore collapse is reported. The method employs atomic ...
This thesis describes studies of materials which can be exploited for hydrogen production from water...
This work describes the use of mesoporous SBA-15 silicas as hard templates for the size-controlled s...
Nanostructured iron(III) oxide deposits are grown by chemical vapor deposition (CVD) at 400 12500 \u...
Control over the oxidation state and crystalline phase of thin-film iron oxides was achieved by low-...
We have synthesized iron oxide-containing mesoporous silica MCM-41 by a direct route. This material ...
ABSTRACT: Atomic layer deposition (ALD) has been shown to be an excellent method for depositing thin...
We have synthesized iron oxide-containing mesoporous silica MCM-41 by a direct route. This material ...
Continuous thin films of SBA-16 mesoporous silica with three-dimensional accessible pore structures ...
Iron can form numerous oxides, hydroxides, and oxide−hydroxides. Despite their relevance, many of th...
Mesoporous thin films (MTFs) displaying high surface area and controlled porosity constitute interes...
Here we demonstrate a simple and scalable synthetic route for preparing porous iron oxides with tuna...
The high structural and chemical diversity of iron-oxygen phases enables widespread applications in ...
Mesoporous crystalline hematite is a material difficult to prepare by soft-templating with conventio...
The growth and thermal stability of an iron oxide overlayer on yttria-stabilized zirconia (YSZ) have...
In this work, we report an innovative route for the manufacturing of functional ceramic supports, by...
This thesis describes studies of materials which can be exploited for hydrogen production from water...
This work describes the use of mesoporous SBA-15 silicas as hard templates for the size-controlled s...
Nanostructured iron(III) oxide deposits are grown by chemical vapor deposition (CVD) at 400 12500 \u...
Control over the oxidation state and crystalline phase of thin-film iron oxides was achieved by low-...
We have synthesized iron oxide-containing mesoporous silica MCM-41 by a direct route. This material ...
ABSTRACT: Atomic layer deposition (ALD) has been shown to be an excellent method for depositing thin...
We have synthesized iron oxide-containing mesoporous silica MCM-41 by a direct route. This material ...
Continuous thin films of SBA-16 mesoporous silica with three-dimensional accessible pore structures ...
Iron can form numerous oxides, hydroxides, and oxide−hydroxides. Despite their relevance, many of th...
Mesoporous thin films (MTFs) displaying high surface area and controlled porosity constitute interes...
Here we demonstrate a simple and scalable synthetic route for preparing porous iron oxides with tuna...
The high structural and chemical diversity of iron-oxygen phases enables widespread applications in ...
Mesoporous crystalline hematite is a material difficult to prepare by soft-templating with conventio...
The growth and thermal stability of an iron oxide overlayer on yttria-stabilized zirconia (YSZ) have...
In this work, we report an innovative route for the manufacturing of functional ceramic supports, by...
This thesis describes studies of materials which can be exploited for hydrogen production from water...
This work describes the use of mesoporous SBA-15 silicas as hard templates for the size-controlled s...
Nanostructured iron(III) oxide deposits are grown by chemical vapor deposition (CVD) at 400 12500 \u...