High-pressure strengthening in ultrafine-grained metals

被引:134
|
作者
Zhou, Xiaoling [1 ,2 ,3 ]
Feng, Zongqiang [4 ]
Zhu, Linli [5 ,6 ]
Xu, Jianing [1 ,7 ]
Miyagi, Lowell [3 ]
Dong, Hongliang [1 ]
Sheng, Hongwei [1 ]
Wang, Yanju [1 ]
Li, Quan [8 ,9 ,10 ]
Ma, Yanming [8 ,9 ,10 ]
Zhang, Hengzhong [1 ]
Yan, Jinyuan [2 ]
Tamura, Nobumichi [2 ]
Kunz, Martin [2 ]
Lutker, Katie [11 ]
Huang, Tianlin [12 ]
Hughes, Darcy A.
Huang, Xiaoxu [4 ]
Chen, Bin [1 ]
机构
[1] Ctr High Pressure Sci & Technol Adv Res, Shanghai, Peoples R China
[2] Lawrence Berkeley Natl Lab, Adv Light Source, Berkeley, CA USA
[3] Univ Utah, Dept Geol & Geophys, Salt Lake City, UT 84112 USA
[4] Chongqing Univ, Coll Mat Sci & Engn, Int Joint Lab Light Alloys MOE, Chongqing, Peoples R China
[5] Zhejiang Univ, Ctr X Mech, Hangzhou, Peoples R China
[6] Zhejiang Univ, Sch Aeronaut & Astronaut, Key Lab Soft Machines & Smart Devices Zhejiang Pr, Hangzhou, Peoples R China
[7] Fudan Univ, Dept Phys, Shanghai, Peoples R China
[8] Jilin Univ, Coll Phys, State Key Lab Superhard Mat, Changchun, Peoples R China
[9] Jilin Univ, Coll Phys, Int Ctr Computat Method & Software, Changchun, Peoples R China
[10] Jilin Univ, Int Ctr Future Sci, Changchun, Peoples R China
[11] Univ Calif Berkeley, Dept Chem, Berkeley, CA 94720 USA
[12] Chongqing Univ, Shenyang Natl Lab Mat Sci, Chongqing, Peoples R China
基金
中国国家自然科学基金;
关键词
MECHANICAL-PROPERTIES; NANOCRYSTALLINE; DEFORMATION; NICKEL; PLASTICITY; TEXTURE; MAXIMUM;
D O I
10.1038/s41586-020-2036-z
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
High-pressure diamond anvil cell experiments reveal that compression strengthening of nanocrystalline nickel increases as its grain sizes decrease to 3 nanometres, owing to dislocation hardening and suppression of grain boundary plasticity. The Hall-Petch relationship, according to which the strength of a metal increases as the grain size decreases, has been reported to break down at a critical grain size of around 10 to 15 nanometres(1,2). As the grain size decreases beyond this point, the dominant mechanism of deformation switches from a dislocation-mediated process to grain boundary sliding, leading to material softening. In one previous approach, stabilization of grain boundaries through relaxation and molybdenum segregation was used to prevent this softening effect in nickel-molybdenum alloys with grain sizes below 10 nanometres(3). Here we track in situ the yield stress and deformation texturing of pure nickel samples of various average grain sizes using a diamond anvil cell coupled with radial X-ray diffraction. Our high-pressure experiments reveal continuous strengthening in samples with grain sizes from 200 nanometres down to 3 nanometres, with the strengthening enhanced (rather than reduced) at grain sizes smaller than 20 nanometres. We achieve a yield strength of approximately 4.2 gigapascals in our 3-nanometre-grain-size samples, ten times stronger than that of a commercial nickel material. A maximum flow stress of 10.2 gigapascals is obtained in nickel of grain size 3 nanometres for the pressure range studied here. We see similar patterns of compression strengthening in gold and palladium samples down to the smallest grain sizes. Simulations and transmission electron microscopy reveal that the high strength observed in nickel of grain size 3 nanometres is caused by the superposition of strengthening mechanisms: both partial and full dislocation hardening plus suppression of grain boundary plasticity. These insights contribute to the ongoing search for ultrastrong metals via materials engineering.
引用
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页码:67 / +
页数:12
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