1.
Guotan Liu,Ke Leng, Xionghui He, Lina Tang, Weihong Gao*,Yudong Fu*,Microstructure evolution of Ti–6Al–4V under cold rolling + low temperature nitriding process.
Progress in Natural Science: Materials International.
https://doi.org/10.1016/j.pnsc.2022.06.004 (通讯作者,
JCR 一区,中科院二区, IF=4.269)
2.
Weihong Gao, Yuxi Yang, Mingqi Deng, Bin Sun, Yudong Fu*, Xiang Wei, Yixuan Li, Zihang Liu* and Jiehe Sui*. Unusual thermoelectric properties mediated by solute segregation in tellurium alloyed CoSbS. Journal of Materials Chemistry A (2022 accept) (
JCR 一区,中科院一区, IF=14.511)
3.
Weihong Gao, Xiaoyang Yi, Bin Sun, Yudong Fu, Xianglong Meng*. Low-cost (ZrCu)50-xTax high temperature shape memory alloys showing excellent shape memory effect.
Progress in Natural Science: Materials International (2022 accept) (
JCR 一区,中科院二区, IF=4.269)
4. Zihang Liu
#,
Weihong Gao#, Hironori Oshima, Kazuo Nagase, Chul-Ho Lee, Takao Mori. Maximizing the performance of n-type Mg3Bi2 based materials for room-temperature power generation and thermoelectric cooling. Nature Communications 13 (2022) 1120. (
共同一作,中科院一区, Nature 子刊,Top 期刊 IF = 17.694)
5. Zihang Liu
#, Naoki Sato
#,
Weihong Gao#, Kunio Yubuta, Naoyuki Kawamoto, Masanori Mitome, Keiji Kurashima, Yuka Owada, Kazuo Nagase, Chul-Ho Lee, Jangho Yi, Koichi Tsuchiya, Takao Mori.
Demonstration of ultrahigh thermoelectric efficiency of ~ 7.3% in Mg3Sb2/MgAgSb module for low-temperature energy harvesting. Joule 5 (2021) 1–13. (共同一作,
JCR 一区,中科院一区,Top 期刊 IF=46.048)
6.
Weihong Gao, Zihang Liu, Wenhao Zhang, Naoki Sato, Quansheng Guo, TakaoMori. Improved Thermoelectric Performance of GeTe via Efficient Yttrium Doping. Applied Physics Letters 118 (2021) 033901. (
JCR 一区,中科院二区,Top 期刊IF=3.971)
7.
Weihong Gao, Zihang Liu, Takahiro Baba, Quansheng Guo, Dai-Ming Tang, Naoyuki Kawamoto, Ernst Bauer, Naohito Tsujii, TakaoMori. Significant off-stoichiometry effect leading to the N-type conduction and ferromagnetic properties in titanium doped Fe2VAl thin films. Acta Materialia 200 (2020) 848-856. (
JCR 一区,中科院一区,Top 期刊 IF=9.209)
8.
Weihong Gao, Xiaoyang Yi, Gangbing Song, Zhenyou Wang, Xianglong Meng. Zr
50Cu
25Ni
7.5Co
17.5 high-temperature shape memory alloy with excellent thermal stability and large recovery strain, and the associated microstructural deformation mechanism. Materials & Design 196 (2020) 109108. (
JCR 一区,中科院一区,Top 期刊 IF=9.417)
9. Zihang Liu*,
Weihong Gao*, Wenhao Zhang, Naoki Sato, Quansheng Guo, and Takao Mori. High Power Factor and Enhanced Thermoelectric Performance in Sc and Bi codoped GeTe: Insights into the Hidden Role of Rhombohedral Distortion Degree. Advanced Energy Materials 10 (2020) 2002588. (共同一作,
JCR 一区,中科院一区,Top 期刊 IF=29.698)
10.
Weihong Gao, Zhenyou Wang, Jin Huang, Zihang Liu. Extraordinary thermoelectric performance realized in hierarchically structured AgSbSe
2 with ultralow thermal conductivity. ACS Applied Materials & Interfaces 10 (2018) 18685-18692. (
JCR 一区,中科院一区,
Top 期刊 IF=10.383)
11.
Weihong Gao, Xiaoyang Yi, Bo Cui, Zhenyou Wang, Jin Huang, Jiehe Sui, Zihang Liu. The critical role of boron doping in the thermoelectric and mechanical properties of nanostructured α-MgAgSb. Journal of Materials Chemistry C 6 (2018) 9821-9827. (
JCR 一区,中科院一区,
Top 期刊 IF=8.067)
12.
Weihong Gao, XiangLong Meng, XiaoYang Yi, GangBing Song, Wei Cai and LianCheng Zhao. Microstructural evolution of superstructure martensite during deformation in Zr
50Cu
50 alloys. Acta Materialia 132 (2017) 405-415. (
JCR 一区,中科院一区,Top 期刊 IF = 9.209)
13.
Weihong Gao, XiangLong Meng, XiaoYang Yi, GangBing Song, Wei Cai and LianCheng Zhao. Stress-Induced Martensitic Transformation of Zr
50Cu
25Ni
10Co
15 Nanocrystals Embedded in an Amorphous Matrix. Journal of Materials Science & Technology 33.3 (2017): 276-280. (
JCR 一区,中科院一区,
Top 期刊 IF=10.319)
14.
Weihong Gao, XiangLong Meng, GangBing Song, Wei Cai and LianCheng Zhao. Empirical mapping of ZrCu-based alloys with valence electrons versus transformation temperatures. Science China Materials 59(2) (2016) 151–157.
(JCR 一区,中科院一区,
Top 期刊 IF=8.640)15.
Weihong Gao, Xianglong Meng, Gangbing Song, Wei Cai, Liancheng Zhao. Effect of Hf content on martensitic transformation, microstructure, and mechanical properties of Cu
50Zr
50-xHf
x alloys. Journal of Alloys and Compounds 662 (2016) 578-582. (
JCR 一区,中科院二区,
Top 期刊 IF=6.371)
16.
Weihong Gao, Xianglong Meng, Wei Cai, Liancheng Zhao. Martensite structure and phase transformation of quaternary ZrCuAlCo high temperature shape memory alloys. Journal of Alloys and Compounds 607 (2014) 99–103.
(JCR 一区,中科院二区,
Top 期刊 IF=6.371)17.
Weihong Gao, Xianglong Meng, Wei Cai, Liancheng Zhao. Effects of Co and Al addition on the martensitic transformation and microstructure in ZrCu-based shape memory alloys. Transactions of Nonferrous Metals Society of China 25(2015) 850-855.
(JCR 一区,中科院二区,
IF=3.752)18. Xianglong Meng,
Weihong Gao, Zhiyong Gao, WeiCai, Liancheng Zhao. Substructure and interface of the superstructure martensitic in Zr
50Cu
50 High temperature shape memory alloy. Materials Letters 117 (2014) 221-224.
(导师一作,
JCR 一区,中科院三区,
IF=3.204, IF=3.574)19. Zihang Liu,
Weihong Gao, Xianfu Meng, Xiaobo Li, Jun Mao, Yumei Wang, Jing Shuai, Wei Cai, Zhifeng Ren, Jiehe Sui. Mechanical properties of nanostructured thermoelectric materials α-MgAgSb,
Scripta Materialia 127 (2017), 72-75.
20. Xiaoyang Yi,
Weihong Gao, Xianglong Meng, Zhiyong Gao, Wei Cai, Liancheng Zhao. Martensitic transformation behaviors and mechanical properties of (Ti
36Ni
49Hf
15)
100-xY
x high temperature shape memory alloys, Journal of Alloys and Compounds 705 (2017) 98-104.
21. Xiaoyang Yi,
Weihong Gao, Haizhen Wang, Wen Yao, Xianglong Meng, Zhiyong Gao, Wei Cai, Liancheng Zhao.
Dependence of aging parameters on precipitation behavior, martensitic transformation and mechanical properties of the aged Ni-Ti alloy under super high pressure, Materials Science and Engineering: A 736 (2018) 354-363.
22. Xiaoyang Yi,
Weihong Gao, Bin Sun, Haizhen Wang, Dan Li, Xianglong Meng, Wei Cai, Liancheng Zhao.
The microstructure and mechanical properties of the as-spun and annealed ZrCu based ribbons, Applied Surface Science 481(2019) 262-271.1.