Atomic-scale phenomena fundamentally influence materials form and function that makes the ability to locally probe and study these processes critical to advancing our understanding and development of materials. Atomic-scale chemical imaging by scanning transmission electron microscopy (STEM) using energy-dispersive X-ray spectroscopy (EDS) is a powerful approach to investigate solid crystal structures. Inefficient X-ray emission and collection, however, require long acquisition times (typically hundreds of seconds), making the technique incompatible with electron-beam sensitive materials and study of dynamic material phenomena. Here we describe an atomic-scale STEM-EDS chemical imaging technique that decreases the acquisition time to as lit...
The development of liquid cells for transmission electron microscopy has enabled breakthroughs in ou...
John Cowley and his group at ASU were pioneers in the use of transmission electron microscopy (TEM)...
Understanding the evolution of chemical composition and morphology of battery materials during elect...
Layered lithium transition metal oxides (LTMO) are promising candidate cathode materials for next-ge...
Dynamic processes, such as solid-state chemical reactions and phase changes, are ubiquitous in mater...
© 2014 WILEY-VCH Verlag GmbH & Co. KGaA, Weinheim. The energy density of current batteries is li...
For the intercalation type cathode in lithium-ion batteries, the structural framework of electrode i...
The key to advancing lithium-ion battery technology-in particular, fast charging-is the ability to f...
Summary: The search for higher performance, improved safety, and lifetime of lithium-ion batteries r...
For the development of next-generation batteries it is important to understand the structural change...
Understanding the reaction pathway and kinetics of solid-state phase transformation is critical in d...
Atomic-level visualization of the intercalation of layered materials, such as metal chalcogenides, i...
For the development of next-generation batteries it is important to understand the structural change...
We present an operando study of a lithium ion battery combining scanning X-ray diffraction (SXRD) an...
The layered oxide LiNiO2 (LNO) has been extensively investigated as a cathode active material for li...
The development of liquid cells for transmission electron microscopy has enabled breakthroughs in ou...
John Cowley and his group at ASU were pioneers in the use of transmission electron microscopy (TEM)...
Understanding the evolution of chemical composition and morphology of battery materials during elect...
Layered lithium transition metal oxides (LTMO) are promising candidate cathode materials for next-ge...
Dynamic processes, such as solid-state chemical reactions and phase changes, are ubiquitous in mater...
© 2014 WILEY-VCH Verlag GmbH & Co. KGaA, Weinheim. The energy density of current batteries is li...
For the intercalation type cathode in lithium-ion batteries, the structural framework of electrode i...
The key to advancing lithium-ion battery technology-in particular, fast charging-is the ability to f...
Summary: The search for higher performance, improved safety, and lifetime of lithium-ion batteries r...
For the development of next-generation batteries it is important to understand the structural change...
Understanding the reaction pathway and kinetics of solid-state phase transformation is critical in d...
Atomic-level visualization of the intercalation of layered materials, such as metal chalcogenides, i...
For the development of next-generation batteries it is important to understand the structural change...
We present an operando study of a lithium ion battery combining scanning X-ray diffraction (SXRD) an...
The layered oxide LiNiO2 (LNO) has been extensively investigated as a cathode active material for li...
The development of liquid cells for transmission electron microscopy has enabled breakthroughs in ou...
John Cowley and his group at ASU were pioneers in the use of transmission electron microscopy (TEM)...
Understanding the evolution of chemical composition and morphology of battery materials during elect...