volume 37 issue 6 pages 911-924

Size–strain line-broadening analysis of the ceria round-robin sample

D. Balzar 1, 2
N. Audebrand 3
M. R. Daymond 4
A. Fitch 5
A. Hewat 6
J. I. Langford 7
A. Le Bail 8
D. Louër 3
O. Masson 5
C. N. McCowan 2
N. C. Popa 9
P. W. Stephens 10
B. H. Toby 11
Publication typeJournal Article
Publication date2004-11-11
scimago Q1
wos Q1
SJR1.183
CiteScore8.5
Impact factor2.8
ISSN00218898, 16005767
General Biochemistry, Genetics and Molecular Biology
Abstract

The results of both a line-broadening study on a ceria sample and a size–strain round robin on diffraction line-broadening methods, which was sponsored by the Commission on Powder Diffraction of the International Union of Crystallography, are presented. The sample was prepared by heating hydrated ceria at 923 K for 45 h. Another ceria sample was prepared to correct for the effects of instrumental broadening by annealing commercially obtained ceria at 1573 K for 3 h and slowly cooling it in the furnace. The diffraction measurements were carried out with two laboratory and two synchrotron X-ray sources, two constant-wavelength neutron and a time-of-flight (TOF) neutron source. Diffraction measurements were analyzed by three methods: the model assuming a lognormal size distribution of spherical crystallites, Warren–Averbach analysis and Rietveld refinement. The last two methods detected a relatively small strain in the sample, as opposed to the first method. Assuming a strain-free sample, the results from all three methods agree well. The average real crystallite size, on the assumption of a spherical crystallite shape, is 191 (5) Å. The scatter of results given by different instruments is relatively small, although significantly larger than the estimated standard uncertainties. The Rietveld refinement results for this ceria sample indicate that the diffraction peaks can be successfully approximated with a pseudo-Voigt function. In a common approximation used in Rietveld refinement programs, this implies that the size-broadened profile cannot be approximated by a Lorentzian but by a full Voigt or pseudo-Voigt function. In the second part of this paper, the results of the round robin on the size–strain line-broadening analysis methods are presented, which was conducted through the participation of 18 groups from 12 countries. Participants have reported results obtained by analyzing data that were collected on the two ceria samples at seven instruments. The analysis of results received in terms of coherently diffracting, both volume-weighted and area-weighted apparent domain size are reported. Although there is a reasonable agreement, the reported results on the volume-weighted domain size show significantly higher scatter than those on the area-weighted domain size. This is most likely due to a significant number of results reporting a high value of strain. Most of those results were obtained by Rietveld refinement in which the Gaussian size parameter was not refined, thus erroneously assigning size-related broadening to other effects. A comparison of results with the average of the three-way comparative analysis from the first part shows a good agreement.

Found 
Found 

Top-30

Journals

2
4
6
8
10
12
14
16
Journal of Alloys and Compounds
16 publications, 3.6%
Journal of Applied Crystallography
15 publications, 3.37%
Ceramics International
12 publications, 2.7%
Journal of Physical Chemistry C
11 publications, 2.47%
Chemistry of Materials
11 publications, 2.47%
Powder Diffraction
10 publications, 2.25%
Journal of Solid State Chemistry
7 publications, 1.57%
Materials Characterization
6 publications, 1.35%
Materials Chemistry and Physics
6 publications, 1.35%
Journal of the European Ceramic Society
6 publications, 1.35%
Journal of Magnetism and Magnetic Materials
6 publications, 1.35%
Inorganic Chemistry
6 publications, 1.35%
Journal of Materials Chemistry A
6 publications, 1.35%
Journal of Applied Physics
5 publications, 1.12%
Scientific Reports
5 publications, 1.12%
Journal of Materials Science
5 publications, 1.12%
Materials Research Bulletin
5 publications, 1.12%
Materials Research Express
5 publications, 1.12%
Acta Materialia
5 publications, 1.12%
ACS applied materials & interfaces
5 publications, 1.12%
Nanoscale
5 publications, 1.12%
Bulletin of Materials Science
4 publications, 0.9%
Nanomaterials
4 publications, 0.9%
Powder Technology
4 publications, 0.9%
Journal of Non-Crystalline Solids
4 publications, 0.9%
Journal of Materials Research and Technology
4 publications, 0.9%
Journal of the American Chemical Society
4 publications, 0.9%
Crystals
3 publications, 0.67%
ChemCatChem
3 publications, 0.67%
2
4
6
8
10
12
14
16

Publishers

20
40
60
80
100
120
140
160
180
Elsevier
170 publications, 38.2%
American Chemical Society (ACS)
49 publications, 11.01%
Springer Nature
48 publications, 10.79%
Wiley
38 publications, 8.54%
Royal Society of Chemistry (RSC)
28 publications, 6.29%
MDPI
17 publications, 3.82%
International Union of Crystallography (IUCr)
16 publications, 3.6%
Cambridge University Press
11 publications, 2.47%
IOP Publishing
10 publications, 2.25%
Pleiades Publishing
7 publications, 1.57%
AIP Publishing
7 publications, 1.57%
Walter de Gruyter
7 publications, 1.57%
American Physical Society (APS)
5 publications, 1.12%
SAGE
3 publications, 0.67%
IGI Global
3 publications, 0.67%
Taylor & Francis
3 publications, 0.67%
World Scientific
2 publications, 0.45%
Frontiers Media S.A.
2 publications, 0.45%
The Korean Fiber Society
2 publications, 0.45%
Universidade Federal de São Carlos
2 publications, 0.45%
Trans Tech Publications
2 publications, 0.45%
Japan Institute of Metals
1 publication, 0.22%
The Electrochemical Society
1 publication, 0.22%
Associacao Brasileiro de Ceramica
1 publication, 0.22%
Editora Edgard Blucher, Ltda.
1 publication, 0.22%
National Institute of Standards and Technology (NIST)
1 publication, 0.22%
Institute of Electrical and Electronics Engineers (IEEE)
1 publication, 0.22%
OOO Zhurnal "Mendeleevskie Soobshcheniya"
1 publication, 0.22%
20
40
60
80
100
120
140
160
180
  • We do not take into account publications without a DOI.
  • Statistics recalculated weekly.

Are you a researcher?

Create a profile to get free access to personal recommendations for colleagues and new articles.
Metrics
445
Share
Cite this
GOST |
Cite this
GOST Copy
Balzar D. et al. Size–strain line-broadening analysis of the ceria round-robin sample // Journal of Applied Crystallography. 2004. Vol. 37. No. 6. pp. 911-924.
GOST all authors (up to 50) Copy
Balzar D., Audebrand N., Daymond M. R., Fitch A., Hewat A., Langford J. I., Le Bail A., Louër D., Masson O., McCowan C. N., Popa N. C., Stephens P. W., Toby B. H. Size–strain line-broadening analysis of the ceria round-robin sample // Journal of Applied Crystallography. 2004. Vol. 37. No. 6. pp. 911-924.
RIS |
Cite this
RIS Copy
TY - JOUR
DO - 10.1107/S0021889804022551
UR - https://doi.org/10.1107/S0021889804022551
TI - Size–strain line-broadening analysis of the ceria round-robin sample
T2 - Journal of Applied Crystallography
AU - Balzar, D.
AU - Audebrand, N.
AU - Daymond, M. R.
AU - Fitch, A.
AU - Hewat, A.
AU - Langford, J. I.
AU - Le Bail, A.
AU - Louër, D.
AU - Masson, O.
AU - McCowan, C. N.
AU - Popa, N. C.
AU - Stephens, P. W.
AU - Toby, B. H.
PY - 2004
DA - 2004/11/11
PB - International Union of Crystallography (IUCr)
SP - 911-924
IS - 6
VL - 37
SN - 0021-8898
SN - 1600-5767
ER -
BibTex |
Cite this
BibTex (up to 50 authors) Copy
@article{2004_Balzar,
author = {D. Balzar and N. Audebrand and M. R. Daymond and A. Fitch and A. Hewat and J. I. Langford and A. Le Bail and D. Louër and O. Masson and C. N. McCowan and N. C. Popa and P. W. Stephens and B. H. Toby},
title = {Size–strain line-broadening analysis of the ceria round-robin sample},
journal = {Journal of Applied Crystallography},
year = {2004},
volume = {37},
publisher = {International Union of Crystallography (IUCr)},
month = {nov},
url = {https://doi.org/10.1107/S0021889804022551},
number = {6},
pages = {911--924},
doi = {10.1107/S0021889804022551}
}
MLA
Cite this
MLA Copy
Balzar, D., et al. “Size–strain line-broadening analysis of the ceria round-robin sample.” Journal of Applied Crystallography, vol. 37, no. 6, Nov. 2004, pp. 911-924. https://doi.org/10.1107/S0021889804022551.