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Grain Boundary Mediated Hydriding Phase Transformations in Individual Polycrystalline Metal Nanoparticles Научная публикация

Журнал Nature Communications
ISSN: 2041-1723
Вых. Данные Год: 2017, Том: 8, Номер: 1, Номер статьи : 1084, Страниц : 10 DOI: 10.1038/s41467-017-00879-9
Ключевые слова molecular-dynamics simulation; scanning-electron-microscope; nanocrystalline palladium; hydrogen absorption; EBSD; visualization; lithographyde; formation; segregation; diffraction
Авторы Alekseeva Svetlana 1 , Bastos da Silva Fanta Alice 2 , Iandolo Beniamino 2,5 , Antosiewicz Tomasz J. 1,3 , Nugroho Ferry Anggoro Ardy 1 , Wagner Jakob B. 2 , Burrows Andrew 2 , Zhdanov Vladimir P. 1,4 , Langhammer Christoph 1
Организации
1 Department of Physics, Chalmers University of Technology, Göteborg 412 96, Sweden
2 Center for Electron Nanoscopy, Technical University of Denmark, Fysikvej, 2800 Kgs Lyngby, Denmark
3 Centre of New Technologies, University of Warsaw, Banacha 2c, Warsaw 02-097, Poland
4 Boreskov Institute of Catalysis, Russian Academy of Sciences, Novosibirsk 630090, Russia
5 Department of Microtechnology and Nanotechnology, Technical University of Denmark, Ørsteds Pl., 2800 Kgs Lyngby, Denmark

Информация о финансировании (5)

1 Федеральное агентство научных организаций России 0303-2016-0001
2 Фонд Кнута и Элис Валленберг 2015.0057
3 European Commission 678941 ERC-StG-2015 SINCAT
4 Stiftelsen för strategisk forskning RMA11-0037
5 European Commission 609405 FP7-PEOPLE-2013-COFUND - Marie-Curie Action

Реферат: Grain boundaries separate crystallites in solids and influence material properties, as widely documented for bulk materials. In nanomaterials, however, investigations of grain boundaries are very challenging and just beginning. Here, we report the systematic mapping of the role of grain boundaries in the hydrogenation phase transformation in individual Pd nanoparticles. Employing multichannel single-particle plasmonic nanospectroscopy, we observe large variation in particle-specific hydride-formation pressure, which is absent in hydride decomposition. Transmission Kikuchi diffraction suggests direct correlation between length and type of grain boundaries and hydride-formation pressure. This correlation is consistent with tensile lattice strain induced by hydrogen localized near grain boundaries as the dominant factor controlling the phase transition during hydrogen absorption. In contrast, such correlation is absent for hydride decomposition, suggesting a different phase-transition pathway. In a wider context, our experimental setup represents a powerful platform to unravel microstructure–function correlations at the individual-nanoparticle level.
Библиографическая ссылка: Alekseeva S. , Bastos da Silva Fanta A. , Iandolo B. , Antosiewicz T.J. , Nugroho F.A.A. , Wagner J.B. , Burrows A. , Zhdanov V.P. , Langhammer C.
Grain Boundary Mediated Hydriding Phase Transformations in Individual Polycrystalline Metal Nanoparticles
Nature Communications. 2017. V.8. N1. 1084 :1-10. DOI: 10.1038/s41467-017-00879-9 WOS Scopus РИНЦ CAPlusCA PMID OpenAlex
Файлы: Полный текст от издателя
Даты:
Поступила в редакцию: 10 апр. 2017 г.
Принята к публикации: 2 авг. 2017 г.
Опубликована online: 20 окт. 2017 г.
Опубликована в печати: 1 дек. 2017 г.
Идентификаторы БД:
Web of science: WOS:000413353500033
Scopus: 2-s2.0-85032218047
РИНЦ: 31153153
Chemical Abstracts: 2018:898415
Chemical Abstracts (print): 175:271228
PMID (PubMed): 29057929
OpenAlex: W2766396963
Цитирование в БД:
БД Цитирований
Web of science 54
Scopus 56
РИНЦ 53
OpenAlex 62
Альметрики: