Wu, Y., Zhang, F., Li, F., Yang, Y., Zhu, J., Wu, H. H., Zhang, Y., Qu, R., Zhang, Z., Nie, Z., Ren, Y., Wang, Y., Liu, X., Wang, H., & Lu, Z. (2022). Local chemical fluctuation mediated ultra-sluggish martensitic transformation in high-entropy intermetallics. Materials Horizons, 9(2), 804-814. https://doi.org/10.1039/d1mh01612a
Wu, Yuan ; Zhang, Fei ; Li, Fengshou 等. / Local chemical fluctuation mediated ultra-sluggish martensitic transformation in high-entropy intermetallics. 在: Materials Horizons. 2022 ; 卷 9, 号码 2. 页码 804-814.
@article{bca50dbcec05480ca2040254fd08e31e,
title = "Local chemical fluctuation mediated ultra-sluggish martensitic transformation in high-entropy intermetallics",
abstract = "Superelasticity associated with martensitic transformation has found a broad range of engineering applications, such as in low-temperature devices in the aerospace industry. Nevertheless, the narrow working temperature range and strong temperature sensitivity of the first-order phase transformation significantly hinder the usage of smart metallic components in many critical areas. Here, we scrutinized the phase transformation behavior and mechanical properties of multicomponent B2-structured intermetallic compounds. Strikingly, the (TiZrHfCuNi)83.3Co16.7 high-entropy intermetallics (HEIs) show superelasticity with high critical stress over 500 MPa, high fracture strength of over 2700 MPa, and small temperature sensitivity in a wide range of temperatures over 220 K. The complex sublattice occupation in these HEIs facilitates formation of nano-scaled local chemical fluctuation and then elastic confinement, which leads to an ultra-sluggish martensitic transformation. The thermal activation of the martensitic transformation was fully suppressed while the stress activation is severely retarded with an enhanced threshold stress over a wide temperature range. Moreover, the high configurational entropy also results in a small entropy change during phase transformation, consequently giving rise to the low temperature sensitivity of the superelasticity stress. Our findings may provide a new paradigm for the development of advanced superelastic alloys, and shed new insights into understanding of martensitic transformation in general.",
author = "Yuan Wu and Fei Zhang and Fengshou Li and Yi Yang and Jiaming Zhu and Wu, {Hong Hui} and Yao Zhang and Ruitao Qu and Zhefeng Zhang and Zhihua Nie and Yang Ren and Yandong Wang and Xiongjun Liu and Hui Wang and Zhaoping Lu",
note = "Publisher Copyright: {\textcopyright} The Royal Society of Chemistry.",
year = "2022",
month = feb,
doi = "10.1039/d1mh01612a",
language = "English",
volume = "9",
pages = "804--814",
journal = "Materials Horizons",
issn = "2051-6347",
publisher = "Royal Society of Chemistry",
number = "2",
}
Wu, Y, Zhang, F, Li, F, Yang, Y, Zhu, J, Wu, HH, Zhang, Y, Qu, R, Zhang, Z, Nie, Z, Ren, Y, Wang, Y, Liu, X, Wang, H & Lu, Z 2022, 'Local chemical fluctuation mediated ultra-sluggish martensitic transformation in high-entropy intermetallics', Materials Horizons, 卷 9, 号码 2, 页码 804-814. https://doi.org/10.1039/d1mh01612a
Local chemical fluctuation mediated ultra-sluggish martensitic transformation in high-entropy intermetallics. / Wu, Yuan; Zhang, Fei; Li, Fengshou 等.
在:
Materials Horizons, 卷 9, 号码 2, 02.2022, 页码 804-814.
科研成果: 期刊稿件 › 文章 › 同行评审
TY - JOUR
T1 - Local chemical fluctuation mediated ultra-sluggish martensitic transformation in high-entropy intermetallics
AU - Wu, Yuan
AU - Zhang, Fei
AU - Li, Fengshou
AU - Yang, Yi
AU - Zhu, Jiaming
AU - Wu, Hong Hui
AU - Zhang, Yao
AU - Qu, Ruitao
AU - Zhang, Zhefeng
AU - Nie, Zhihua
AU - Ren, Yang
AU - Wang, Yandong
AU - Liu, Xiongjun
AU - Wang, Hui
AU - Lu, Zhaoping
N1 - Publisher Copyright:
© The Royal Society of Chemistry.
PY - 2022/2
Y1 - 2022/2
N2 - Superelasticity associated with martensitic transformation has found a broad range of engineering applications, such as in low-temperature devices in the aerospace industry. Nevertheless, the narrow working temperature range and strong temperature sensitivity of the first-order phase transformation significantly hinder the usage of smart metallic components in many critical areas. Here, we scrutinized the phase transformation behavior and mechanical properties of multicomponent B2-structured intermetallic compounds. Strikingly, the (TiZrHfCuNi)83.3Co16.7 high-entropy intermetallics (HEIs) show superelasticity with high critical stress over 500 MPa, high fracture strength of over 2700 MPa, and small temperature sensitivity in a wide range of temperatures over 220 K. The complex sublattice occupation in these HEIs facilitates formation of nano-scaled local chemical fluctuation and then elastic confinement, which leads to an ultra-sluggish martensitic transformation. The thermal activation of the martensitic transformation was fully suppressed while the stress activation is severely retarded with an enhanced threshold stress over a wide temperature range. Moreover, the high configurational entropy also results in a small entropy change during phase transformation, consequently giving rise to the low temperature sensitivity of the superelasticity stress. Our findings may provide a new paradigm for the development of advanced superelastic alloys, and shed new insights into understanding of martensitic transformation in general.
AB - Superelasticity associated with martensitic transformation has found a broad range of engineering applications, such as in low-temperature devices in the aerospace industry. Nevertheless, the narrow working temperature range and strong temperature sensitivity of the first-order phase transformation significantly hinder the usage of smart metallic components in many critical areas. Here, we scrutinized the phase transformation behavior and mechanical properties of multicomponent B2-structured intermetallic compounds. Strikingly, the (TiZrHfCuNi)83.3Co16.7 high-entropy intermetallics (HEIs) show superelasticity with high critical stress over 500 MPa, high fracture strength of over 2700 MPa, and small temperature sensitivity in a wide range of temperatures over 220 K. The complex sublattice occupation in these HEIs facilitates formation of nano-scaled local chemical fluctuation and then elastic confinement, which leads to an ultra-sluggish martensitic transformation. The thermal activation of the martensitic transformation was fully suppressed while the stress activation is severely retarded with an enhanced threshold stress over a wide temperature range. Moreover, the high configurational entropy also results in a small entropy change during phase transformation, consequently giving rise to the low temperature sensitivity of the superelasticity stress. Our findings may provide a new paradigm for the development of advanced superelastic alloys, and shed new insights into understanding of martensitic transformation in general.
UR - http://www.scopus.com/inward/record.url?scp=85124436919&partnerID=8YFLogxK
U2 - 10.1039/d1mh01612a
DO - 10.1039/d1mh01612a
M3 - Article
C2 - 34908069
AN - SCOPUS:85124436919
SN - 2051-6347
VL - 9
SP - 804
EP - 814
JO - Materials Horizons
JF - Materials Horizons
IS - 2
ER -
Wu Y, Zhang F, Li F, Yang Y, Zhu J, Wu HH 等. Local chemical fluctuation mediated ultra-sluggish martensitic transformation in high-entropy intermetallics. Materials Horizons. 2022 2月;9(2):804-814. doi: 10.1039/d1mh01612a