scholarly journals Twin boundary migration in an individual platinum nanocrystal during catalytic CO oxidation

2021 ◽  
Vol 12 (1) ◽  
Author(s):  
Jérôme Carnis ◽  
Aseem Rajan Kshirsagar ◽  
Longfei Wu ◽  
Maxime Dupraz ◽  
Stéphane Labat ◽  
...  

AbstractAt the nanoscale, elastic strain and crystal defects largely influence the properties and functionalities of materials. The ability to predict the structural evolution of catalytic nanocrystals during the reaction is of primary importance for catalyst design. However, to date, imaging and characterising the structure of defects inside a nanocrystal in three-dimensions and in situ during reaction has remained a challenge. We report here an unusual twin boundary migration process in a single platinum nanoparticle during CO oxidation using Bragg coherent diffraction imaging as the characterisation tool. Density functional theory calculations show that twin migration can be correlated with the relative change in the interfacial energies of the free surfaces exposed to CO. The x-ray technique also reveals particle reshaping during the reaction. In situ and non-invasive structural characterisation of defects during reaction opens new avenues for understanding defect behaviour in confined crystals and paves the way for strain and defect engineering.

2004 ◽  
Vol 467-470 ◽  
pp. 911-916 ◽  
Author(s):  
Václav Paidar ◽  
Pavel Lejček ◽  
M. Polcarová ◽  
J. Brádler ◽  
Alain Jacques

Grain boundary motion was studied in situ at elevated temperatures by x-ray topography using synchrotron radiation. In addition to the position of grain boundary, other crystal defects that may interact with the moving boundary were observed simultaneously. Two types of bicrystals with the [001] rotation axis were selected for the experiments, the first one with a high coincidence S5 misorientation of about 37° and the other one with no coincidence of two crystals for the misorientation of 45°. The geometrical differences between chosen bicrystals are examined and attention is also paid to faceting – local orientations of the boundary plane.


2015 ◽  
Vol 96 ◽  
pp. 57-65 ◽  
Author(s):  
F. Mompiou ◽  
M. Legros ◽  
C. Ensslen ◽  
O. Kraft

2014 ◽  
Vol 104 (23) ◽  
pp. 231910 ◽  
Author(s):  
Y. Liu ◽  
J. Jian ◽  
Y. Chen ◽  
H. Wang ◽  
X. Zhang

2013 ◽  
Vol 69 (5) ◽  
pp. 385-388 ◽  
Author(s):  
K.Y. Yu ◽  
D. Bufford ◽  
F. Khatkhatay ◽  
H. Wang ◽  
M.A. Kirk ◽  
...  

2019 ◽  
Author(s):  
Seoin Back ◽  
Kevin Tran ◽  
Zachary Ulissi

<div> <div> <div> <div><p>Developing active and stable oxygen evolution catalysts is a key to enabling various future energy technologies and the state-of-the-art catalyst is Ir-containing oxide materials. Understanding oxygen chemistry on oxide materials is significantly more complicated than studying transition metal catalysts for two reasons: the most stable surface coverage under reaction conditions is extremely important but difficult to understand without many detailed calculations, and there are many possible active sites and configurations on O* or OH* covered surfaces. We have developed an automated and high-throughput approach to solve this problem and predict OER overpotentials for arbitrary oxide surfaces. We demonstrate this for a number of previously-unstudied IrO2 and IrO3 polymorphs and their facets. We discovered that low index surfaces of IrO2 other than rutile (110) are more active than the most stable rutile (110), and we identified promising active sites of IrO2 and IrO3 that outperform rutile (110) by 0.2 V in theoretical overpotential. Based on findings from DFT calculations, we pro- vide catalyst design strategies to improve catalytic activity of Ir based catalysts and demonstrate a machine learning model capable of predicting surface coverages and site activity. This work highlights the importance of investigating unexplored chemical space to design promising catalysts.<br></p></div></div></div></div><div><div><div> </div> </div> </div>


2020 ◽  
Vol 13 (10) ◽  
pp. 105501
Author(s):  
Kuan-Kan Hu ◽  
Kensaku Maeda ◽  
Keiji Shiga ◽  
Haruhiko Morito ◽  
Kozo Fujiwara

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