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Imaging 3D Chemistry at 1 nm Resolution with Fused Multi-Modal Electron Tomography

Authors :
Robert Hovden
Jonathan Schwartz
Zichao Di
Yi Jiang
Jason Manassa
Jacob Pietryga
Yiwen Qian
Min Cho
Jonathan Rowell
Huihuo Zheng
Richard Robinson
Junsi Gu
Alexey Kirilin
Steve Rozeveld
Peter Ercius
Jeffrey Fessler
Ting Xu
Mary Scott
Publication Year :
2023

Abstract

Measuring the three-dimensional (3D) distribution of chemistry in nanoscale matter is a longstanding challenge for metrological science. The inelastic scattering events required for 3D chemical imaging are too rare, requiring high beam exposure that destroys the specimen before an experiment completes. Even larger doses are required to achieve high resolution. Thus, chemical mapping in 3D has been unachievable except at lower resolution with the most radiation-hard materials. Here, high-resolution 3D chemical imaging is achieved near or below one nanometer resolution in a Au-Fe3O4 metamaterial, Co3O4 - Mn3O4 core-shell nanocrystals, and ZnS-Cu0.64S0.36 nanomaterial using fused multi-modal electron tomography. Multi-modal data fusion enables high-resolution chemical tomography often with 99% less dose by linking information encoded within both elastic (HAADF) and inelastic (EDX / EELS) signals. Now sub-nanometer 3D resolution of chemistry is measurable for a broad class of geometrically and compositionally complex materials.

Details

Language :
English
Database :
OpenAIRE
Accession number :
edsair.doi.dedup.....965ec0043b084078314bb6c4e2c73882