English

Nanomaterial datasets to advance tomography in scanning transmission electron microscopy

Mesoscale and Nanoscale Physics 2016-06-10 v1 Instrumentation and Detectors

Abstract

Electron tomography in materials science has flourished with the demand to characterize nanoscale materials in three dimensions (3D). Access to experimental data is vital for developing and validating reconstruction methods that improve resolution and reduce radiation dose requirements. This work presents five high-quality scanning transmission electron microscope (STEM) tomography datasets in order to address the critical need for open access data in this field. The datasets represent the current limits of experimental technique, are of high quality, and contain materials with structural complexity. Included are tomographic series of a hyperbranched Co2P nanocrystal, platinum nanoparticles on a carbon nanofibre imaged over the complete 180{\deg} tilt range, a platinum nanoparticle and a tungsten needle both imaged at atomic resolution by equal slope tomography, and a through-focal tilt series of PtCu nanoparticles. A volumetric reconstruction from every dataset is provided for comparison and development of post-processing and visualization techniques. Researchers interested in creating novel data processing and reconstruction algorithms will now have access to state of the art experimental test data.

Keywords

Cite

@article{arxiv.1606.02938,
  title  = {Nanomaterial datasets to advance tomography in scanning transmission electron microscopy},
  author = {Barnaby D. A. Levin and Elliot Padgett and Chien-Chun Chen and M. C. Scott and Rui Xu and Wolfgang Theis and Yi Jiang and Yongsoo Yang and Colin Ophus and Haitao Zhang and Don-Hyung Ha and Deli Wang and Yingchao Yu and Hector D. Abruna and Richard D. Robinson and Peter Ercius and Lena F. Kourkoutis and Jianwei Miao and David A. Muller and Robert Hovden},
  journal= {arXiv preprint arXiv:1606.02938},
  year   = {2016}
}

Comments

3 figures, 10 datasets