Issue 6, 2015

Insights into the physical chemistry of materials from advances in HAADF-STEM

Abstract

The observation that, “New tools lead to new science”[P. S. Weiss, ACS Nano., 2012, 6(3), 1877–1879], is perhaps nowhere more evident than in scanning transmission electron microscopy (STEM). Advances in STEM have endowed this technique with several powerful and complimentary capabilities. For example, the application of high-angle annular dark-field imaging has made possible real-space imaging at sub-angstrom resolution with Z-contrast (Z = atomic number). Further advances have wrought: simultaneous real-space imaging and elemental identification by using electron energy loss spectroscopy (EELS); 3-dimensional (3D) mapping by depth sectioning; monitoring of surface diffusion by time-sequencing of images; reduced electron energy imaging for probing graphenes; etc. In this paper we review how these advances, often coupled with first-principles theory, have led to interesting and important new insights into the physical chemistry of materials. We then review in detail a few specific applications that highlight some of these STEM capabilities.

Graphical abstract: Insights into the physical chemistry of materials from advances in HAADF-STEM

Article information

Article type
Perspective
Submitted
20 Sep 2014
Accepted
13 Nov 2014
First published
13 Nov 2014

Phys. Chem. Chem. Phys., 2015,17, 3982-4006

Author version available

Insights into the physical chemistry of materials from advances in HAADF-STEM

K. Sohlberg, T. J. Pennycook, W. Zhou and S. J. Pennycook, Phys. Chem. Chem. Phys., 2015, 17, 3982 DOI: 10.1039/C4CP04232H

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