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Observing growth under confinement: Sn nanopillars in porous alumina templates.
Harlow, Gary S; Drnec, Jakub; Wiegmann, Tim; Lipé, Weronica; Evertsson, Jonas; Persson, Axel R; Wallenberg, Reine; Lundgren, Edvin; Vinogradov, Nikolay A.
Afiliación
  • Harlow GS; Division of Synchrotron Radiation Research, Lund University 221 00 Lund Sweden gary.harlow@sljus.lu.se.
  • Drnec J; ESRF - The European Synchrotron 71 Avenue des Martyrs 38000 Grenoble France.
  • Wiegmann T; ESRF - The European Synchrotron 71 Avenue des Martyrs 38000 Grenoble France.
  • Lipé W; Division of Synchrotron Radiation Research, Lund University 221 00 Lund Sweden gary.harlow@sljus.lu.se.
  • Evertsson J; Division of Synchrotron Radiation Research, Lund University 221 00 Lund Sweden gary.harlow@sljus.lu.se.
  • Persson AR; National Center for High Resolution Electron Microscopy and NanoLund, Lund University 221 00 Lund Sweden.
  • Wallenberg R; National Center for High Resolution Electron Microscopy and NanoLund, Lund University 221 00 Lund Sweden.
  • Lundgren E; Division of Synchrotron Radiation Research, Lund University 221 00 Lund Sweden gary.harlow@sljus.lu.se.
  • Vinogradov NA; MAX IV Laboratory 22594 Lund Sweden nikolay.vinogradov@maxiv.lu.se.
Nanoscale Adv ; 1(12): 4764-4771, 2019 Dec 03.
Article en En | MEDLINE | ID: mdl-36133116
ABSTRACT
Using a micro-focused high-energy X-ray beam, we have performed in situ time-resolved depth profiling during the electrochemical deposition of Sn into an ordered porous anodic alumina template. Combined with micro-diffraction we are able to follow the variation of the structure at the atomic scale as a function of depth and time. We show that Sn initially deposits at the bottom of the pores, and forms metallic nanopillars with a preferred [100] orientation and a relatively low mosaicity. The lattice strain is found to differ from previous ex situ measurements where the Sn had been removed from the porous support. The dendritic nature of the pore bottom affects the Sn growth mode and results in a variation of Sn grain size, strain and mosaicity. Such atomic scale information of nano-templated materials during electrodeposition may improve the future fabrication of devices.

Texto completo: 1 Colección: 01-internacional Banco de datos: MEDLINE Idioma: En Revista: Nanoscale Adv Año: 2019 Tipo del documento: Article

Texto completo: 1 Colección: 01-internacional Banco de datos: MEDLINE Idioma: En Revista: Nanoscale Adv Año: 2019 Tipo del documento: Article