Revealing Grain Boundaries and Defect Formation in Nanocrystal Superlattices by Nanodiffraction

Bibliographic Details
Parent link:Small
Vol. 15, iss. 50.— 2019.— [1904954, 8 p.]
Corporate Author: Национальный исследовательский Томский политехнический университет Институт неразрушающего контроля Международная научно-образовательная лаборатория неразрушающего контроля
Other Authors: Mukharamova N. Nastasia, Lapkin D. Dmitry, Zaluzhnyy I. A. Ivan, Andre A. Alexander, Lazarev S. V. Sergey Vladimirovich, Kim Young Yong, Sprung M. Michael, Kurta R. Ruslan, Schreiber F. Frank, Vartanyants I. A. Ivan, Scheele M. Marcus
Summary:Title screen
X‐ray nanodiffraction is applied to study the formation and correlation of domain boundaries in mesocrystalline superlattices of PbS nanocrystals with face‐centered cubic structure. Each domain of the superlattice can be described with one of two mesocrystalline polymorphs with different orientational orders. Close to a grain boundary, the lattice constant decreases and the superlattice undergoes an out‐of‐plane rotation, while the orientation of the nanocrystals with respect to the superlattice remains unchanged. These findings are explained with the release of stress on the expense of specific nanocrystal-substrate interactions. The fact that correlations between adjacent nanocrystals are found to survive the structural changes at most grain boundaries implies that the key to nanocrystal superlattices with macroscopic domain sizes are strengthened interactions with the substrate.
Language:English
Published: 2019
Subjects:
Online Access:https://doi.org/10.1002/smll.201904954
Format: Electronic Book Chapter
KOHA link:https://koha.lib.tpu.ru/cgi-bin/koha/opac-detail.pl?biblionumber=661621

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200 1 |a Revealing Grain Boundaries and Defect Formation in Nanocrystal Superlattices by Nanodiffraction  |f N. Mukharamova [et al.] 
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330 |a X‐ray nanodiffraction is applied to study the formation and correlation of domain boundaries in mesocrystalline superlattices of PbS nanocrystals with face‐centered cubic structure. Each domain of the superlattice can be described with one of two mesocrystalline polymorphs with different orientational orders. Close to a grain boundary, the lattice constant decreases and the superlattice undergoes an out‐of‐plane rotation, while the orientation of the nanocrystals with respect to the superlattice remains unchanged. These findings are explained with the release of stress on the expense of specific nanocrystal-substrate interactions. The fact that correlations between adjacent nanocrystals are found to survive the structural changes at most grain boundaries implies that the key to nanocrystal superlattices with macroscopic domain sizes are strengthened interactions with the substrate. 
461 |t Small 
463 |t Vol. 15, iss. 50  |v [1904954, 8 p.]  |d 2019 
610 1 |a электронный ресурс 
610 1 |a труды учёных ТПУ 
610 1 |a crystal defects 
610 1 |a mesocrystals 
610 1 |a nanoparticles 
610 1 |a superlattices 
610 1 |a X-ray scattering 
610 1 |a наночастицы 
610 1 |a рентгеновское рассеяние 
701 1 |a Mukharamova  |b N.  |g Nastasia 
701 1 |a Lapkin  |b D.  |g Dmitry 
701 1 |a Zaluzhnyy  |b I. A.  |g Ivan 
701 1 |a Andre  |b A.  |g Alexander 
701 1 |a Lazarev  |b S. V.  |c physicist  |c engineer at Tomsk Polytechnic University  |f 1984-  |g Sergey Vladimirovich  |3 (RuTPU)RU\TPU\pers\35210 
701 0 |a Kim Young Yong 
701 1 |a Sprung  |b M.  |g Michael 
701 1 |a Kurta  |b R.  |g Ruslan 
701 1 |a Schreiber  |b F.  |g Frank 
701 1 |a Vartanyants  |b I. A.  |g Ivan 
701 1 |a Scheele  |b M.  |g Marcus 
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