Xu, H., Wei, J., Zhou, H., Feng, J., Xu, T., Du, H., He, C., Huang, Y., Zhang, J., Liu, Y., Wu, H. C., Guo, C., Wang, X., Guang, Y., Wei, H., Peng, Y., Jiang, W., Yu, G., & Han, X. (2020). High Spin Hall Conductivity in Large-Area Type-II Dirac Semimetal PtTe2 Advanced Materials, 32(17), Article 2000513. https://doi.org/10.1002/adma.202000513
Xu, Hongjun ; Wei, Jinwu ; Zhou, Hengan et al. / High Spin Hall Conductivity in Large-Area Type-II Dirac Semimetal PtTe2 In: Advanced Materials. 2020 ; Vol. 32, No. 17.
@article{bbc0e6347a4441968b1f6af83d006c2b,
title = "High Spin Hall Conductivity in Large-Area Type-II Dirac Semimetal PtTe2 ",
abstract = "Manipulation of magnetization by electric-current-induced spin–orbit torque (SOT) is of great importance for spintronic applications because of its merits in energy-efficient and high-speed operation. An ideal material for SOT applications should possess high charge-spin conversion efficiency and high electrical conductivity. Recently, transition metal dichalcogenides (TMDs) emerge as intriguing platforms for SOT study because of their controllability in spin–orbit coupling, conductivity, and energy band topology. Although TMDs show great potentials in SOT applications, the present study is restricted to the mechanically exfoliated samples with small sizes and relatively low conductivities. Here, a manufacturable recipe is developed to fabricate large-area thin films of PtTe2, a type-II Dirac semimetal, to study their capability of generating SOT. Large SOT efficiency together with high conductivity results in a giant spin Hall conductivity of PtTe2 thin films, which is the largest value among the presently reported TMDs. It is further demonstrated that the SOT from PtTe2 layer can switch a perpendicularly magnetized CoTb layer efficiently. This work paves the way for employing PtTe2-like TMDs for wafer-scale spintronic device applications.",
keywords = "platina ditelluride, spin Hall conductivity, spin–orbit torque, thin film, type-II Dirac semimetal",
author = "Hongjun Xu and Jinwu Wei and Hengan Zhou and Jiafeng Feng and Teng Xu and Haifeng Du and Congli He and Yuan Huang and Junwei Zhang and Yizhou Liu and Wu, {Han Chun} and Chenyang Guo and Xiao Wang and Yao Guang and Hongxiang Wei and Yong Peng and Wanjun Jiang and Guoqiang Yu and Xiufeng Han",
note = "Publisher Copyright: {\textcopyright} 2020 WILEY-VCH Verlag GmbH & Co. KGaA, Weinheim",
year = "2020",
month = apr,
day = "1",
doi = "10.1002/adma.202000513",
language = "English",
volume = "32",
journal = "Advanced Materials",
issn = "0935-9648",
publisher = "Wiley-Blackwell",
number = "17",
}
Xu, H, Wei, J, Zhou, H, Feng, J, Xu, T, Du, H, He, C, Huang, Y, Zhang, J, Liu, Y, Wu, HC, Guo, C, Wang, X, Guang, Y, Wei, H, Peng, Y, Jiang, W, Yu, G & Han, X 2020, 'High Spin Hall Conductivity in Large-Area Type-II Dirac Semimetal PtTe2 ', Advanced Materials, vol. 32, no. 17, 2000513. https://doi.org/10.1002/adma.202000513
High Spin Hall Conductivity in Large-Area Type-II Dirac Semimetal PtTe2 . / Xu, Hongjun; Wei, Jinwu; Zhou, Hengan et al.
In:
Advanced Materials, Vol. 32, No. 17, 2000513, 01.04.2020.
Research output: Contribution to journal › Article › peer-review
TY - JOUR
T1 - High Spin Hall Conductivity in Large-Area Type-II Dirac Semimetal PtTe2
AU - Xu, Hongjun
AU - Wei, Jinwu
AU - Zhou, Hengan
AU - Feng, Jiafeng
AU - Xu, Teng
AU - Du, Haifeng
AU - He, Congli
AU - Huang, Yuan
AU - Zhang, Junwei
AU - Liu, Yizhou
AU - Wu, Han Chun
AU - Guo, Chenyang
AU - Wang, Xiao
AU - Guang, Yao
AU - Wei, Hongxiang
AU - Peng, Yong
AU - Jiang, Wanjun
AU - Yu, Guoqiang
AU - Han, Xiufeng
N1 - Publisher Copyright:
© 2020 WILEY-VCH Verlag GmbH & Co. KGaA, Weinheim
PY - 2020/4/1
Y1 - 2020/4/1
N2 - Manipulation of magnetization by electric-current-induced spin–orbit torque (SOT) is of great importance for spintronic applications because of its merits in energy-efficient and high-speed operation. An ideal material for SOT applications should possess high charge-spin conversion efficiency and high electrical conductivity. Recently, transition metal dichalcogenides (TMDs) emerge as intriguing platforms for SOT study because of their controllability in spin–orbit coupling, conductivity, and energy band topology. Although TMDs show great potentials in SOT applications, the present study is restricted to the mechanically exfoliated samples with small sizes and relatively low conductivities. Here, a manufacturable recipe is developed to fabricate large-area thin films of PtTe2, a type-II Dirac semimetal, to study their capability of generating SOT. Large SOT efficiency together with high conductivity results in a giant spin Hall conductivity of PtTe2 thin films, which is the largest value among the presently reported TMDs. It is further demonstrated that the SOT from PtTe2 layer can switch a perpendicularly magnetized CoTb layer efficiently. This work paves the way for employing PtTe2-like TMDs for wafer-scale spintronic device applications.
AB - Manipulation of magnetization by electric-current-induced spin–orbit torque (SOT) is of great importance for spintronic applications because of its merits in energy-efficient and high-speed operation. An ideal material for SOT applications should possess high charge-spin conversion efficiency and high electrical conductivity. Recently, transition metal dichalcogenides (TMDs) emerge as intriguing platforms for SOT study because of their controllability in spin–orbit coupling, conductivity, and energy band topology. Although TMDs show great potentials in SOT applications, the present study is restricted to the mechanically exfoliated samples with small sizes and relatively low conductivities. Here, a manufacturable recipe is developed to fabricate large-area thin films of PtTe2, a type-II Dirac semimetal, to study their capability of generating SOT. Large SOT efficiency together with high conductivity results in a giant spin Hall conductivity of PtTe2 thin films, which is the largest value among the presently reported TMDs. It is further demonstrated that the SOT from PtTe2 layer can switch a perpendicularly magnetized CoTb layer efficiently. This work paves the way for employing PtTe2-like TMDs for wafer-scale spintronic device applications.
KW - platina ditelluride
KW - spin Hall conductivity
KW - spin–orbit torque
KW - thin film
KW - type-II Dirac semimetal
UR - http://www.scopus.com/inward/record.url?scp=85081747666&partnerID=8YFLogxK
U2 - 10.1002/adma.202000513
DO - 10.1002/adma.202000513
M3 - Article
C2 - 32176423
AN - SCOPUS:85081747666
SN - 0935-9648
VL - 32
JO - Advanced Materials
JF - Advanced Materials
IS - 17
M1 - 2000513
ER -
Xu H, Wei J, Zhou H, Feng J, Xu T, Du H et al. High Spin Hall Conductivity in Large-Area Type-II Dirac Semimetal PtTe2 Advanced Materials. 2020 Apr 1;32(17):2000513. doi: 10.1002/adma.202000513