Single-Phase Concentrated Solid-Solution Alloys: Bridging Intrinsic Transport Properties and Irradiation Resistance

Single-phase concentrated solid-solution alloys (SP-CSAs), including high entropy alloys (HEAs), are compositionally complex but structurally simple, and provide a playground of tailoring material properties through modifying their compositional complexity. The recent progress in understanding the c...

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Main Authors: Ke Jin, Hongbin Bei
Format: Article
Language:English
Published: Frontiers Media S.A. 2018-04-01
Series:Frontiers in Materials
Subjects:
Online Access:http://journal.frontiersin.org/article/10.3389/fmats.2018.00026/full
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spelling doaj-d5cd13d69dac47dfb9ed611dcb2a691f2020-11-24T22:37:42ZengFrontiers Media S.A.Frontiers in Materials2296-80162018-04-01510.3389/fmats.2018.00026355591Single-Phase Concentrated Solid-Solution Alloys: Bridging Intrinsic Transport Properties and Irradiation ResistanceKe JinHongbin BeiSingle-phase concentrated solid-solution alloys (SP-CSAs), including high entropy alloys (HEAs), are compositionally complex but structurally simple, and provide a playground of tailoring material properties through modifying their compositional complexity. The recent progress in understanding the compositional effects on the energy and mass transport properties in a series of face-centered-cubic SP-CSAs is the focus of this review. Relatively low electrical and thermal conductivities, as well as small separations between the interstitial and vacancy migration barriers have been generally observed, but largely depend on the alloying constituents. We further discuss the impact of such intrinsic transport properties on their irradiation response; the linkage to the delayed damage accumulation, slow defect aggregation, and suppressed irradiation induced swelling and segregation has been presented. We emphasize that the number of alloying elements may not be a critical factor on both transport properties and the defect behaviors under ion irradiations. The recent findings have stimulated novel concepts in the design of new radiation-tolerant materials, but further studies are demanded to enable predictive models that can quantitatively bridge the transport properties to the radiation damage.http://journal.frontiersin.org/article/10.3389/fmats.2018.00026/fullsolid-solution alloyshigh entropy alloysthermal conductivityelectrical resistivityradiation damagediffusion
collection DOAJ
language English
format Article
sources DOAJ
author Ke Jin
Hongbin Bei
spellingShingle Ke Jin
Hongbin Bei
Single-Phase Concentrated Solid-Solution Alloys: Bridging Intrinsic Transport Properties and Irradiation Resistance
Frontiers in Materials
solid-solution alloys
high entropy alloys
thermal conductivity
electrical resistivity
radiation damage
diffusion
author_facet Ke Jin
Hongbin Bei
author_sort Ke Jin
title Single-Phase Concentrated Solid-Solution Alloys: Bridging Intrinsic Transport Properties and Irradiation Resistance
title_short Single-Phase Concentrated Solid-Solution Alloys: Bridging Intrinsic Transport Properties and Irradiation Resistance
title_full Single-Phase Concentrated Solid-Solution Alloys: Bridging Intrinsic Transport Properties and Irradiation Resistance
title_fullStr Single-Phase Concentrated Solid-Solution Alloys: Bridging Intrinsic Transport Properties and Irradiation Resistance
title_full_unstemmed Single-Phase Concentrated Solid-Solution Alloys: Bridging Intrinsic Transport Properties and Irradiation Resistance
title_sort single-phase concentrated solid-solution alloys: bridging intrinsic transport properties and irradiation resistance
publisher Frontiers Media S.A.
series Frontiers in Materials
issn 2296-8016
publishDate 2018-04-01
description Single-phase concentrated solid-solution alloys (SP-CSAs), including high entropy alloys (HEAs), are compositionally complex but structurally simple, and provide a playground of tailoring material properties through modifying their compositional complexity. The recent progress in understanding the compositional effects on the energy and mass transport properties in a series of face-centered-cubic SP-CSAs is the focus of this review. Relatively low electrical and thermal conductivities, as well as small separations between the interstitial and vacancy migration barriers have been generally observed, but largely depend on the alloying constituents. We further discuss the impact of such intrinsic transport properties on their irradiation response; the linkage to the delayed damage accumulation, slow defect aggregation, and suppressed irradiation induced swelling and segregation has been presented. We emphasize that the number of alloying elements may not be a critical factor on both transport properties and the defect behaviors under ion irradiations. The recent findings have stimulated novel concepts in the design of new radiation-tolerant materials, but further studies are demanded to enable predictive models that can quantitatively bridge the transport properties to the radiation damage.
topic solid-solution alloys
high entropy alloys
thermal conductivity
electrical resistivity
radiation damage
diffusion
url http://journal.frontiersin.org/article/10.3389/fmats.2018.00026/full
work_keys_str_mv AT kejin singlephaseconcentratedsolidsolutionalloysbridgingintrinsictransportpropertiesandirradiationresistance
AT hongbinbei singlephaseconcentratedsolidsolutionalloysbridgingintrinsictransportpropertiesandirradiationresistance
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