Cargando…

Structure, Morphology, Heat Capacity, and Electrical Transport Properties of Ti(3)(Al,Si)C(2) Materials

A study of Ti(3)Al(1−x)Si(x)C(2) (x = 0 to x = 1) MAX-phase alloys is reported. The materials were obtained from mixtures of Ti(3)AlC(2) and Ti(3)SiC(2) powders with hot pressing sintering technique. They were characterised with X-ray diffraction, heat capacity, electrical resistivity, and magnetore...

Descripción completa

Detalles Bibliográficos
Autores principales: Goc, Kamil, Przewoźnik, Janusz, Witulska, Katarzyna, Chlubny, Leszek, Tokarz, Waldemar, Strączek, Tomasz, Michalik, Jan Marek, Jurczyk, Jakub, Utke, Ivo, Lis, Jerzy, Kapusta, Czesław
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8230697/
https://www.ncbi.nlm.nih.gov/pubmed/34207937
http://dx.doi.org/10.3390/ma14123222
_version_ 1783713272304762880
author Goc, Kamil
Przewoźnik, Janusz
Witulska, Katarzyna
Chlubny, Leszek
Tokarz, Waldemar
Strączek, Tomasz
Michalik, Jan Marek
Jurczyk, Jakub
Utke, Ivo
Lis, Jerzy
Kapusta, Czesław
author_facet Goc, Kamil
Przewoźnik, Janusz
Witulska, Katarzyna
Chlubny, Leszek
Tokarz, Waldemar
Strączek, Tomasz
Michalik, Jan Marek
Jurczyk, Jakub
Utke, Ivo
Lis, Jerzy
Kapusta, Czesław
author_sort Goc, Kamil
collection PubMed
description A study of Ti(3)Al(1−x)Si(x)C(2) (x = 0 to x = 1) MAX-phase alloys is reported. The materials were obtained from mixtures of Ti(3)AlC(2) and Ti(3)SiC(2) powders with hot pressing sintering technique. They were characterised with X-ray diffraction, heat capacity, electrical resistivity, and magnetoresistance measurements. The results show a good quality crystal structure and metallic properties with high residual resistivity. The resistivity weakly varies with Si doping and shows a small, positive magnetoresistance effect. The magnetoresistance exhibits a quadratic dependence on the magnetic field, which indicates a dominant contribution from open electronic orbits. The Debye temperatures and Sommerfeld coefficient values derived from specific heat data show slight variations with Si content, with decreasing tendency for the former and an increase for the latter. Experimental results were supported by band structure calculations whose results are consistent with the experiment concerning specific heat, resistivity, and magnetoresistance measurements. In particular, they reveal that of the s-electrons at the Fermi level, those of Al and Si have prevailing density of states and, thus predominantly contribute to the metallic conductivity. This also shows that the high residual resistivity of the materials studied is an intrinsic effect, not due to defects of the crystal structure.
format Online
Article
Text
id pubmed-8230697
institution National Center for Biotechnology Information
language English
publishDate 2021
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-82306972021-06-26 Structure, Morphology, Heat Capacity, and Electrical Transport Properties of Ti(3)(Al,Si)C(2) Materials Goc, Kamil Przewoźnik, Janusz Witulska, Katarzyna Chlubny, Leszek Tokarz, Waldemar Strączek, Tomasz Michalik, Jan Marek Jurczyk, Jakub Utke, Ivo Lis, Jerzy Kapusta, Czesław Materials (Basel) Article A study of Ti(3)Al(1−x)Si(x)C(2) (x = 0 to x = 1) MAX-phase alloys is reported. The materials were obtained from mixtures of Ti(3)AlC(2) and Ti(3)SiC(2) powders with hot pressing sintering technique. They were characterised with X-ray diffraction, heat capacity, electrical resistivity, and magnetoresistance measurements. The results show a good quality crystal structure and metallic properties with high residual resistivity. The resistivity weakly varies with Si doping and shows a small, positive magnetoresistance effect. The magnetoresistance exhibits a quadratic dependence on the magnetic field, which indicates a dominant contribution from open electronic orbits. The Debye temperatures and Sommerfeld coefficient values derived from specific heat data show slight variations with Si content, with decreasing tendency for the former and an increase for the latter. Experimental results were supported by band structure calculations whose results are consistent with the experiment concerning specific heat, resistivity, and magnetoresistance measurements. In particular, they reveal that of the s-electrons at the Fermi level, those of Al and Si have prevailing density of states and, thus predominantly contribute to the metallic conductivity. This also shows that the high residual resistivity of the materials studied is an intrinsic effect, not due to defects of the crystal structure. MDPI 2021-06-11 /pmc/articles/PMC8230697/ /pubmed/34207937 http://dx.doi.org/10.3390/ma14123222 Text en © 2021 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Goc, Kamil
Przewoźnik, Janusz
Witulska, Katarzyna
Chlubny, Leszek
Tokarz, Waldemar
Strączek, Tomasz
Michalik, Jan Marek
Jurczyk, Jakub
Utke, Ivo
Lis, Jerzy
Kapusta, Czesław
Structure, Morphology, Heat Capacity, and Electrical Transport Properties of Ti(3)(Al,Si)C(2) Materials
title Structure, Morphology, Heat Capacity, and Electrical Transport Properties of Ti(3)(Al,Si)C(2) Materials
title_full Structure, Morphology, Heat Capacity, and Electrical Transport Properties of Ti(3)(Al,Si)C(2) Materials
title_fullStr Structure, Morphology, Heat Capacity, and Electrical Transport Properties of Ti(3)(Al,Si)C(2) Materials
title_full_unstemmed Structure, Morphology, Heat Capacity, and Electrical Transport Properties of Ti(3)(Al,Si)C(2) Materials
title_short Structure, Morphology, Heat Capacity, and Electrical Transport Properties of Ti(3)(Al,Si)C(2) Materials
title_sort structure, morphology, heat capacity, and electrical transport properties of ti(3)(al,si)c(2) materials
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8230697/
https://www.ncbi.nlm.nih.gov/pubmed/34207937
http://dx.doi.org/10.3390/ma14123222
work_keys_str_mv AT gockamil structuremorphologyheatcapacityandelectricaltransportpropertiesofti3alsic2materials
AT przewoznikjanusz structuremorphologyheatcapacityandelectricaltransportpropertiesofti3alsic2materials
AT witulskakatarzyna structuremorphologyheatcapacityandelectricaltransportpropertiesofti3alsic2materials
AT chlubnyleszek structuremorphologyheatcapacityandelectricaltransportpropertiesofti3alsic2materials
AT tokarzwaldemar structuremorphologyheatcapacityandelectricaltransportpropertiesofti3alsic2materials
AT straczektomasz structuremorphologyheatcapacityandelectricaltransportpropertiesofti3alsic2materials
AT michalikjanmarek structuremorphologyheatcapacityandelectricaltransportpropertiesofti3alsic2materials
AT jurczykjakub structuremorphologyheatcapacityandelectricaltransportpropertiesofti3alsic2materials
AT utkeivo structuremorphologyheatcapacityandelectricaltransportpropertiesofti3alsic2materials
AT lisjerzy structuremorphologyheatcapacityandelectricaltransportpropertiesofti3alsic2materials
AT kapustaczesław structuremorphologyheatcapacityandelectricaltransportpropertiesofti3alsic2materials