The properties of many functional materials depend critically on the spatial distribution of an active phase within a matrix or support material. In the case of solid catalysts, controlling the spatial distribution of metal (oxide) nanoparticles at the mesoscopic scale offers new strategies to tune their performance and enhance their lifetimes. However, such advanced control requires the development of suitable methods to characterize the spatial distribution of nanoparticles at the mesoscopic scale. Currently electron microscopy and more specifically electron tomography is close to being the only option. Here, we show how the background in x-ray scattering patterns can be analyzed to quantitatively access the distribution of metal nanopart...
Countless technologies and chemical processes make use of nanoporous materials: heterogeneous cataly...
Pd/SiO2 supported catalysts were investigated using anomalous small-angle X-ray scattering (ASAXS), ...
Full-field transmission X-ray microscopy has been used to determine the 3D structure of a whole indi...
The properties of many functional materials depend critically on the spatial distribution of an acti...
Small-angle scattering of X-rays (SAXS) or neutrons (SANS) is one of the few experimental methods th...
The controlled assembly of materials on the nanoscale has been a major focus of research across many...
The activity, selectivity and stability of solid catalysts depend critically on the details of their...
The specimen preparation method is crucial for how much information can be gained from transmission ...
Heterogeneous catalysis, where a solid catalyst facilitates a gas- or liquid-phase reaction, plays a...
Small-angle scattering (SAXS or SANS) is one of the few experimental methods available for the nanom...
ABSTRACT: Full-field transmission X-ray microscopy has been used to determine the 3D structure of a ...
The analysis of the microstructure of materials, typically of the size and the crystal defects, is w...
Heterogeneous catalysis plays a major role in modern society, for example in chemical production, su...
The modern chemical industryuses heterogeneous catalysts in almost every production process(1). They...
Countless technologies and chemical processes make use of nanoporous materials: heterogeneous cataly...
Pd/SiO2 supported catalysts were investigated using anomalous small-angle X-ray scattering (ASAXS), ...
Full-field transmission X-ray microscopy has been used to determine the 3D structure of a whole indi...
The properties of many functional materials depend critically on the spatial distribution of an acti...
Small-angle scattering of X-rays (SAXS) or neutrons (SANS) is one of the few experimental methods th...
The controlled assembly of materials on the nanoscale has been a major focus of research across many...
The activity, selectivity and stability of solid catalysts depend critically on the details of their...
The specimen preparation method is crucial for how much information can be gained from transmission ...
Heterogeneous catalysis, where a solid catalyst facilitates a gas- or liquid-phase reaction, plays a...
Small-angle scattering (SAXS or SANS) is one of the few experimental methods available for the nanom...
ABSTRACT: Full-field transmission X-ray microscopy has been used to determine the 3D structure of a ...
The analysis of the microstructure of materials, typically of the size and the crystal defects, is w...
Heterogeneous catalysis plays a major role in modern society, for example in chemical production, su...
The modern chemical industryuses heterogeneous catalysts in almost every production process(1). They...
Countless technologies and chemical processes make use of nanoporous materials: heterogeneous cataly...
Pd/SiO2 supported catalysts were investigated using anomalous small-angle X-ray scattering (ASAXS), ...
Full-field transmission X-ray microscopy has been used to determine the 3D structure of a whole indi...