Effect of Grain Boundaries on the Electron Work Function of Ultrafine Grained Aluminum

The electron work function (EWF) of ultrafine grained (UFG) aluminum structured by high pressure torsion (HPT) has been investigated. For the first time, the dependence of the EWF on the specific length of grain boundaries (or the grain size) for UFG Al has been obtained. The change of average grain...

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Main Authors: Orlova T.S., Ankudinov A.V., Mavlyutov A.M., Resnina N.N.
Format: Article
Language:English
Published: De Gruyter 2018-06-01
Series:Reviews on Advanced Materials Science
Online Access:https://doi.org/10.1515/rams-2018-0053
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spelling doaj-53e42c76976b45ac9c9876df2103942e2021-09-05T14:00:07ZengDe GruyterReviews on Advanced Materials Science1605-81272018-06-0157111011510.1515/rams-2018-0053Effect of Grain Boundaries on the Electron Work Function of Ultrafine Grained AluminumOrlova T.S.0Ankudinov A.V.1Mavlyutov A.M.2Resnina N.N.3Ioffe Institute, Russian Academy of Sciences, Politekhnicheskaya str. 26,St. Petersburg, 194021 RussiaIoffe Institute, Russian Academy of Sciences, Politekhnicheskaya str. 26,St. Petersburg, 194021 RussiaSaint Petersburg National Research University of Information Technologies, Mechanics and Optics, Kronverksky Pr. 49, St. Petersburg197101, RussiaSaint Petersburg State University, Universitetskaya nab. 7/9,St. Petersburg, 199034, RussiaThe electron work function (EWF) of ultrafine grained (UFG) aluminum structured by high pressure torsion (HPT) has been investigated. For the first time, the dependence of the EWF on the specific length of grain boundaries (or the grain size) for UFG Al has been obtained. The change of average grain size was achieved by short term annealing of HPT-processed aluminum at different temperatures from the range 90-400 °C. It has been shown that the state of grain boundaries (GBs) affects the magnitude of the EWF. It has been found that the transformation of GBs due to annealing at 90 °C from a nonequilibrium to more equilibrium state while maintaining the specific length of GBs and their average misorientation is accompanied by a decrease in average GB specific energy by 0.3 J m-2. This transition provides a sharp increase in the EWF of the UFGAl by 0.25 eV.https://doi.org/10.1515/rams-2018-0053
collection DOAJ
language English
format Article
sources DOAJ
author Orlova T.S.
Ankudinov A.V.
Mavlyutov A.M.
Resnina N.N.
spellingShingle Orlova T.S.
Ankudinov A.V.
Mavlyutov A.M.
Resnina N.N.
Effect of Grain Boundaries on the Electron Work Function of Ultrafine Grained Aluminum
Reviews on Advanced Materials Science
author_facet Orlova T.S.
Ankudinov A.V.
Mavlyutov A.M.
Resnina N.N.
author_sort Orlova T.S.
title Effect of Grain Boundaries on the Electron Work Function of Ultrafine Grained Aluminum
title_short Effect of Grain Boundaries on the Electron Work Function of Ultrafine Grained Aluminum
title_full Effect of Grain Boundaries on the Electron Work Function of Ultrafine Grained Aluminum
title_fullStr Effect of Grain Boundaries on the Electron Work Function of Ultrafine Grained Aluminum
title_full_unstemmed Effect of Grain Boundaries on the Electron Work Function of Ultrafine Grained Aluminum
title_sort effect of grain boundaries on the electron work function of ultrafine grained aluminum
publisher De Gruyter
series Reviews on Advanced Materials Science
issn 1605-8127
publishDate 2018-06-01
description The electron work function (EWF) of ultrafine grained (UFG) aluminum structured by high pressure torsion (HPT) has been investigated. For the first time, the dependence of the EWF on the specific length of grain boundaries (or the grain size) for UFG Al has been obtained. The change of average grain size was achieved by short term annealing of HPT-processed aluminum at different temperatures from the range 90-400 °C. It has been shown that the state of grain boundaries (GBs) affects the magnitude of the EWF. It has been found that the transformation of GBs due to annealing at 90 °C from a nonequilibrium to more equilibrium state while maintaining the specific length of GBs and their average misorientation is accompanied by a decrease in average GB specific energy by 0.3 J m-2. This transition provides a sharp increase in the EWF of the UFGAl by 0.25 eV.
url https://doi.org/10.1515/rams-2018-0053
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