Morphology and Structure of Electrolytically Synthesized Tin Dendritic Nanostructures

The formation of tin dendritic nanostructures by electrolysis from the alkaline electrolyte has been investigated. Morphology and structure of Sn dendrites produced applying both potentiostatic and galvanostatic regimes of the electrolysis are characterized by SEM and XRD, respectively. Depending on...

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Published in:Metals
Main Authors: Nebojša D. Nikolić, Jelena D. Lović, Vesna M. Maksimović, Predrag M. Živković
Format: Article
Language:English
Published: MDPI AG 2022-07-01
Subjects:
Online Access:https://www.mdpi.com/2075-4701/12/7/1201
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author Nebojša D. Nikolić
Jelena D. Lović
Vesna M. Maksimović
Predrag M. Živković
author_facet Nebojša D. Nikolić
Jelena D. Lović
Vesna M. Maksimović
Predrag M. Živković
author_sort Nebojša D. Nikolić
collection DOAJ
container_title Metals
description The formation of tin dendritic nanostructures by electrolysis from the alkaline electrolyte has been investigated. Morphology and structure of Sn dendrites produced applying both potentiostatic and galvanostatic regimes of the electrolysis are characterized by SEM and XRD, respectively. Depending on the applied cathodic potentials, three types of Sn dendrites were obtained: (a) needle-like and spear-like, (b) fern-like, and (c) stem-like dendrites. The very branchy dendrites with branches of the prismatic shape obtained by the galvanostatic regime of electrolysis represented a novel type of Sn dendrites, not previously reported in the literature. To explain the formation of various dendritic forms, correlation with the polarization characteristics for this electrodeposition system is considered. The needle-like and the spear-like dendrites represented monocrystals of (200),(400) preferred orientation, the fern-like dendrites exhibited the predominant (220),(440) preferred orientation, while in the stem-like particles Sn crystallites were oriented to a greater extent in the (440) crystal plane than in other planes. The galvanostatically synthesized Sn particles possessed the strong (200),(400) preferred orientation. The strong influence of parameters and regimes of electrodeposition on structural characteristics of Sn dendrites is explained by the fundamental laws of electrocrystallization taking into consideration the concept of slow-growing and fast-growing crystal planes.
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spelling doaj-art-eb254991eb3d4bc4b5aba58efc6ae9ef2025-08-19T21:50:08ZengMDPI AGMetals2075-47012022-07-01127120110.3390/met12071201Morphology and Structure of Electrolytically Synthesized Tin Dendritic NanostructuresNebojša D. Nikolić0Jelena D. Lović1Vesna M. Maksimović2Predrag M. Živković3Department of Electrochemistry, Institute of Chemistry, Technology and Metallurgy, University of Belgrade, Njegoševa 12, 11000 Belgrade, SerbiaDepartment of Electrochemistry, Institute of Chemistry, Technology and Metallurgy, University of Belgrade, Njegoševa 12, 11000 Belgrade, SerbiaVinča Institute of Nuclear Science—National Institute of the Republic of Serbia, University of Belgrade, 11000 Belgrade, SerbiaFaculty of Technology and Metallurgy, University of Belgrade, Karnegijeva 4, 11000 Belgrade, SerbiaThe formation of tin dendritic nanostructures by electrolysis from the alkaline electrolyte has been investigated. Morphology and structure of Sn dendrites produced applying both potentiostatic and galvanostatic regimes of the electrolysis are characterized by SEM and XRD, respectively. Depending on the applied cathodic potentials, three types of Sn dendrites were obtained: (a) needle-like and spear-like, (b) fern-like, and (c) stem-like dendrites. The very branchy dendrites with branches of the prismatic shape obtained by the galvanostatic regime of electrolysis represented a novel type of Sn dendrites, not previously reported in the literature. To explain the formation of various dendritic forms, correlation with the polarization characteristics for this electrodeposition system is considered. The needle-like and the spear-like dendrites represented monocrystals of (200),(400) preferred orientation, the fern-like dendrites exhibited the predominant (220),(440) preferred orientation, while in the stem-like particles Sn crystallites were oriented to a greater extent in the (440) crystal plane than in other planes. The galvanostatically synthesized Sn particles possessed the strong (200),(400) preferred orientation. The strong influence of parameters and regimes of electrodeposition on structural characteristics of Sn dendrites is explained by the fundamental laws of electrocrystallization taking into consideration the concept of slow-growing and fast-growing crystal planes.https://www.mdpi.com/2075-4701/12/7/1201electrodepositiontinmorphologystructuredendriteSEM
spellingShingle Nebojša D. Nikolić
Jelena D. Lović
Vesna M. Maksimović
Predrag M. Živković
Morphology and Structure of Electrolytically Synthesized Tin Dendritic Nanostructures
electrodeposition
tin
morphology
structure
dendrite
SEM
title Morphology and Structure of Electrolytically Synthesized Tin Dendritic Nanostructures
title_full Morphology and Structure of Electrolytically Synthesized Tin Dendritic Nanostructures
title_fullStr Morphology and Structure of Electrolytically Synthesized Tin Dendritic Nanostructures
title_full_unstemmed Morphology and Structure of Electrolytically Synthesized Tin Dendritic Nanostructures
title_short Morphology and Structure of Electrolytically Synthesized Tin Dendritic Nanostructures
title_sort morphology and structure of electrolytically synthesized tin dendritic nanostructures
topic electrodeposition
tin
morphology
structure
dendrite
SEM
url https://www.mdpi.com/2075-4701/12/7/1201
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AT predragmzivkovic morphologyandstructureofelectrolyticallysynthesizedtindendriticnanostructures