Defect engineering can enhance key properties of metal-organic frameworks (MOFs). Tailoring the distribution of defects, for example in correlated nanodomains, requires characterization across length scales. However, a critical na-noscale characterization gap has emerged between the bulk diffraction techniques used to detect defect nanodomains and the sub-nanometer imaging used to observe individual defects. Here, we demonstrate that the emerging technique of scanning electron diffraction (SED) can bridge this gap uniquely enabling both nanoscale crystallographic analysis and the low-dose formation of multiple diffraction contrast images for defect analysis in MOFs. We directly image defect nanodomains in the MOF UiO-66(Hf) over an area of ...
The wide-ranging properties of metal organic frameworks (MOFs) rely in many cases on the presence of...
Metal-organic Frameworks (MOFs) are a group of crystalline and highly porous materials consisting of...
Characterization of nanoscale changes in the atomic structure of amorphous materials is a profound c...
Defect engineering can enhance key properties of metal-organic frameworks (MOFs). Tailoring the dist...
© 2019, The Author(s), under exclusive licence to Springer Nature Limited. Defect engineering of met...
International audienceThroughout much of condensed matter science, correlated disorder is a key to m...
Throughout much of condensed matter science, correlated disorder is a key to material function. Whil...
The presence and variation of chemical functionality and defects in crystalline materials, such as m...
International audienceThe wide-ranging properties of metal organic frameworks (MOFs) rely in many ca...
Defects in crystalline solids control the properties of engineered and natural materials, and their ...
Crystalline materials are often considered to have rigid periodic lattices, while soft materials are...
Metal-organic frameworks (MOFs) represent a class of 3D crystalline porous materials composed of org...
The structures of solids can locally differ from the macroscopic picture obtained by structural aver...
© 2014 American Chemical SocietyThis paper describes the preparation and characterization of nanosca...
Metal-Organic Frameworks (MOFs) have the potential to change the landscape of molecular separations ...
The wide-ranging properties of metal organic frameworks (MOFs) rely in many cases on the presence of...
Metal-organic Frameworks (MOFs) are a group of crystalline and highly porous materials consisting of...
Characterization of nanoscale changes in the atomic structure of amorphous materials is a profound c...
Defect engineering can enhance key properties of metal-organic frameworks (MOFs). Tailoring the dist...
© 2019, The Author(s), under exclusive licence to Springer Nature Limited. Defect engineering of met...
International audienceThroughout much of condensed matter science, correlated disorder is a key to m...
Throughout much of condensed matter science, correlated disorder is a key to material function. Whil...
The presence and variation of chemical functionality and defects in crystalline materials, such as m...
International audienceThe wide-ranging properties of metal organic frameworks (MOFs) rely in many ca...
Defects in crystalline solids control the properties of engineered and natural materials, and their ...
Crystalline materials are often considered to have rigid periodic lattices, while soft materials are...
Metal-organic frameworks (MOFs) represent a class of 3D crystalline porous materials composed of org...
The structures of solids can locally differ from the macroscopic picture obtained by structural aver...
© 2014 American Chemical SocietyThis paper describes the preparation and characterization of nanosca...
Metal-Organic Frameworks (MOFs) have the potential to change the landscape of molecular separations ...
The wide-ranging properties of metal organic frameworks (MOFs) rely in many cases on the presence of...
Metal-organic Frameworks (MOFs) are a group of crystalline and highly porous materials consisting of...
Characterization of nanoscale changes in the atomic structure of amorphous materials is a profound c...