Acta Metallurgica Sinica (English Letters) ›› 2016, Vol. 29 ›› Issue (2): 181-187.DOI: 10.1007/s40195-016-0375-4
Special Issue: 2016纳米材料专辑
• Orginal Article • Previous Articles Next Articles
Kai Wu1, Jin-Yu Zhang1, Gang Liu1(), Jiao Li1, Guo-Jun Zhang1, Jun Sun2(
)
Received:
2015-11-27
Revised:
2015-12-10
Online:
2016-02-05
Published:
2016-02-20
Kai Wu, Jin-Yu Zhang, Gang Liu, Jiao Li, Guo-Jun Zhang, Jun Sun. An Easy Way to Quantify the Adhesion Energy of Nanostructured Cu/X (X = Cr, Ta, Mo, Nb, Zr) Multilayer Films Adherent to Polyimide Substrates[J]. Acta Metallurgica Sinica (English Letters), 2016, 29(2): 181-187.
Add to citation manager EndNote|Ris|BibTeX
Fig. 1 Bright-field cross-sectional TEM micrographs showing typical the modulation structure of the Cu/Cr NMFs a, Cu/Mo NMFs b, Cu/Zr NMFs c, Cu/Nb NMFs d with λ = 50 nm
Fig. 2 SEM images showing the microcracks evolution for Cu/Cr NMFs with λ = 50 nm with different strains of 5%a, 10% b, 20% c, cracks and buckles can be seen and marked by open and filled arrows, respectively, and the S - ε curve of Cu/Cr NMFs with λ = 50 nm d
Fig. 3 AFM height images of a buckle with three measurements and the corresponding buckle profiles for different NMFs: a, b Cu/Cr; c, d Cu/Ta; e, f Cu/Mo; g, h Cu/Nb; i, j Cu/Zr
Materials | E f (GPa) | δ (μm) | 2l (μm) | κ | Γ (J/m2) |
---|---|---|---|---|---|
Cu/Cr | 170 | 3.11 | 10.54 | 4.0 × 10-4 | 5.0 |
Cu/Ta | 165 | 2.38 | 13.34 | 3.0 × 10-4 | 4.1 |
Cu/Mo | 205 | 2.48 | 19.09 | 1.7 × 10-5 | 2.8 |
Cu/Nb | 147 | 1.18 | 7.08 | 1.0 × 10-4 | 1.1 |
Cu/Zr | 145 | 2.23 | 20.75 | 9.0 × 10-5 | 1.2 |
Table 1 Summary of results for elastic modulus E f , average buckles height δ, average buckles width 2l, minimum κand adhesion energy Γ
Materials | E f (GPa) | δ (μm) | 2l (μm) | κ | Γ (J/m2) |
---|---|---|---|---|---|
Cu/Cr | 170 | 3.11 | 10.54 | 4.0 × 10-4 | 5.0 |
Cu/Ta | 165 | 2.38 | 13.34 | 3.0 × 10-4 | 4.1 |
Cu/Mo | 205 | 2.48 | 19.09 | 1.7 × 10-5 | 2.8 |
Cu/Nb | 147 | 1.18 | 7.08 | 1.0 × 10-4 | 1.1 |
Cu/Zr | 145 | 2.23 | 20.75 | 9.0 × 10-5 | 1.2 |
Fig. 5 Average fragment size as a function of the applied strain in the Cu/Cr a, Cu/Ta b, Cu/Mo c, Cu/Nb d, Cu/Zr eNMFs, the dash line in each graph is a linear fitting for the data in the stage I
Materials | α | β (MPa) | L c (μm) | γ | τ (MPa) |
---|---|---|---|---|---|
Cu/Cr | 5.70 | 1495 | 33.29 | 0.93 | 45.04 |
Cu/Ta | 5.34 | 1450 | 37.65 | 0.92 | 35.96 |
Cu/Mo | 4.95 | 1335 | 39.30 | 0.92 | 29.70 |
Cu/Nb | 4.85 | 1100 | 42.75 | 0.92 | 21.75 |
Cu/Zr | 3.00 | 1050 | 50.25 | 0.91 | 10.27 |
Table 2 Summary of results for Weibull exponent α, Weibull scale factor γ, gamma function γ and interfacial shear strength τ
Materials | α | β (MPa) | L c (μm) | γ | τ (MPa) |
---|---|---|---|---|---|
Cu/Cr | 5.70 | 1495 | 33.29 | 0.93 | 45.04 |
Cu/Ta | 5.34 | 1450 | 37.65 | 0.92 | 35.96 |
Cu/Mo | 4.95 | 1335 | 39.30 | 0.92 | 29.70 |
Cu/Nb | 4.85 | 1100 | 42.75 | 0.92 | 21.75 |
Cu/Zr | 3.00 | 1050 | 50.25 | 0.91 | 10.27 |
[1] | O. Kraft, C.A. Volkert, Adv. Eng. Mater. 3, 99(2001) |
[2] | J.A. Rogers, T. Someya, Y. Huang, Science 327, 1603 (2010) |
[3] | D.H. Kim, J.A. Rogers, Adv. Mater. 20, 4887(2008) |
[4] | Y. Xiang, T. Li, Z. Suo, J.J. Vlassak, Appl. Phys. Lett. 87,161910(2005) |
[5] | T. Li, Z. Suo, Int. J. Solids Struct. 44, 1696(2007) |
[6] | A.A. Volinsky, N.R. Moody, W.W. Gerberich, Acta Mater. 50,441(2002) |
[7] | N. Lambricht, T. Pardoen, S. Yunus, Acta Mater. 61, 540(2013) |
[8] | C.J. Lee, C.H. Hsieh, H.S. Huang, J.C. Huang, Scr. Mater. 69, 5(2013) |
[9] | N. Lu, X. Wang, Z. Suo, J. Vlassak, Appl. Phys. Lett. 91,221909(2007) |
[10] | M.J. Cordill, F.D. Fischer, F.G. Rammerstorfer, G. Dehm, Acta Mater. 58, 5520(2010) |
[11] | M.A. Phillips, B.M. Clemens, W.D. Nix, Acta Mater. 51, 3157(2003) |
[12] | A. Misra, J.P. Hirth, R.G. Hoagland, Acta Mater. 53, 4817(2005) |
[13] | J. Wang, A. Misra, Curr. Opin. Solid State Mater. Sci. 15, 20(2011) |
[14] | J.Y. Zhang, X. Zhang, R.H. Wang, S.Y. Lei, P. Zhang, J.J. Niu,G. Liu, G.J. Zhang, J. Sun, Acta Mater. 59, 7368(2011) |
[15] | J.Y. Zhang, S. Lei, J. Niu, Y. Liu, G. Liu, X. Zhang, J. Sun, Acta Mater. 60, 4054(2012) |
[16] | J.J. Niu, J.Y. Zhang, G. Liu, P. Zhang, S.Y. Lei, G.J. Zhang, J.Sun, Acta Mater. 60, 3677(2012) |
[17] | K. Wu, J.Y. Zhang, J. Li, Y.Q. Wang, G. Liu, J. Sun, Acta Mater. 100, 344(2015) |
[18] | N. Jia, M.-W. Zhu, Y.-R. Zheng, T. He, X. Zhao, Acta Metall.Sin. (Engl. Lett.) 28, 600(2015) |
[19] | R. Whiting, M.A. Angadi, Meas. Sci. Technol. 2, 879(1991) |
[20] | K. Nallamshetty, M.A. Angadi, Phys. Status Solidi A 132, 397(1992) |
[21] | A. Misra, M.F. Hundley, D. Hristova, H. Kung, T.E. Mitchell,M. Nastasi, J.D. Embury, J. Appl. Phys. 85, 302(1999) |
[22] | X. Zhang, A. Misra, J. Appl. Phys. 96, 7173(2004) |
[23] | L.B. Freund, S. Suresh, Thin Film Materials: Stress, Defect Formation and Surface Evolution (Cambridge University Press,Cambridge, 2004) |
[24] | A. Misra, H. Kung, T.E. Mitchell, M. Nastasi, J. Mater. Res. 15,756(2000) |
[25] | K. Wu, J.Y. Zhang, G. Liu, P. Zhang, P.M. Cheng, J. Li, G.J.Zhang, J. Sun, Acta Mater. 61, 7889(2013) |
[26] | K. Wu, J.Y. Zhang, P. Zhang, Y.Q. Wang, G. Liu, G.J. Zhang, J.Sun, Mater. Sci. Eng. A 613, 130 (2014) |
[27] | A. Pundt, E. Nikitin, P. Pekarski, R. Kirchheim, Acta Mater. 52,1579(2004) |
[28] | H. Jin, W.Y. Lu, M.J. Cordill, K. Schmidegg, Exp. Mech. 51,219(2011) |
[29] | Y. Leterrier, Prog. Mater Sci. 48, 1(2003) |
[30] | A. Kelly, W.R. Tyson, J. Mech. Phys. Solids 13, 329 (1965) |
[31] | M.S. Hu, A.G. Evans, Acta Metall. 37, 917(1989) |
[32] | Y. Leterrier, L. Boogh, J. Andersons, J.A. Ma°nson, J. Polym.Sci. B 35, 1449 (1997) |
[1] | Jinglin Liu, Qi Song, Lihui Song, Shude Ji, Mingshen Li, Zhen Jia, Kang Yang. A Novel Friction Stir Spot Riveting of Al/Cu Dissimilar Materials [J]. Acta Metallurgica Sinica (English Letters), 2021, 34(1): 135-144. |
[2] | Zheng-Zheng Yin, Zhao-Qi Zhang, Xiu-Juan Tian, Zhen-Lin Wang, Rong-Chang Zeng. Corrosion Resistance and Durability of Superhydrophobic Coating on AZ31 Mg Alloy via One-Step Electrodeposition [J]. Acta Metallurgica Sinica (English Letters), 2021, 34(1): 25-38. |
[3] | Lu An, Yan-Tao Sun, Shan-Ping Lu, Zhen-Bo Wang. Enhanced Fatigue Property of Welded S355J2W Steel by Forming a Gradient Nanostructured Surface Layer [J]. Acta Metallurgica Sinica (English Letters), 2020, 33(9): 1252-1258. |
[4] | Dan-Yang Liu, Jin-Feng Li, Yong-Cheng Lin, Peng-Cheng Ma, Yong-Lai Chen, Xu-Hu Zhang, Rui-Feng Zhang. Cu/Li Ratio on the Microstructure Evolution and Corrosion Behaviors of Al-xCu-yLi-Mg Alloys [J]. Acta Metallurgica Sinica (English Letters), 2020, 33(9): 1201-1216. |
[5] | Xiaochao Liu, Yufeng Sun, Tomoya Nagira, Kohsaku Ushioda, Hidetoshi Fujii. Effect of Stacking Fault Energy on the Grain Structure Evolution of FCC Metals During Friction Stir Welding [J]. Acta Metallurgica Sinica (English Letters), 2020, 33(7): 1001-1012. |
[6] | Guang-Lei Wang, Dong-Qing Qi, Ji-De Liu, Jin-Lai Liu, Yi-Zhou Zhou, Xu-Dong Sun, Hai-Feng Zhang, Xiao-Feng Sun. Effect of Interactions Among Elements on Diffusion Process Associated with γ′ Coarsening in a Ni-Based Single-Crystal Superalloy [J]. Acta Metallurgica Sinica (English Letters), 2020, 33(7): 1013-1020. |
[7] | Yue Su, Shun-Cun Luo, Liang Meng, Piao Gao, Ze-Min Wang. Selective Laser Melting of In Situ TiB/Ti6Al4V Composites: Formability, Microstructure Evolution and Mechanical Performance [J]. Acta Metallurgica Sinica (English Letters), 2020, 33(6): 774-788. |
[8] | Hui Li, Wan Du, Yi Liu. Molecular Dynamics Study of Tension Process of Ni-Based Superalloy [J]. Acta Metallurgica Sinica (English Letters), 2020, 33(5): 741-750. |
[9] | Chenfan Yu, Yuan Zhong, Peng Zhang, Zhenjun Zhang, Congcong Zhao, Zhefeng Zhang, Zhijian Shen, Wei Liu. Effect of Build Direction on Fatigue Performance of L-PBF 316L Stainless Steel [J]. Acta Metallurgica Sinica (English Letters), 2020, 33(4): 539-550. |
[10] | Fu-Yue Wang, Xiang-Jie Wang, Wei Sun, Fang Yu, Jian-Zhong Cui. Low Frequency Electromagnetic Casting of 2195 Aluminum-Lithium Alloy and Its Effects on Microstructure and Mechanical Properties [J]. Acta Metallurgica Sinica (English Letters), 2020, 33(3): 338-350. |
[11] | Zhu Wang, Zi-Ru Zhang, Lei Zhang, Zhe Feng, Min-Xu Lu. Comparison Study on the Semiconductive and Dissolution Behaviour of 316L and Alloy 625 in Hydrochloric Acid Solution [J]. Acta Metallurgica Sinica (English Letters), 2020, 33(3): 403-414. |
[12] | Pengfei Gao, Weijian Chen, Feng Li, Beijia Ning, Zhengzhi Zhao. Quasi-Situ Characterization of Deformation in Low-Carbon Steel with Equiaxed and Lamellar Microstructure Treated by the Quenching and Partitioning Process [J]. Acta Metallurgica Sinica (English Letters), 2020, 33(12): 1657-1665. |
[13] | Guodong Hu, Pei Wang, Dianzhong Li, Yiyi Li. High-temperature Tensile Behavior in Coarse-grained and Fine-grained Nb-containing 25Cr-20Ni Austenitic Stainless Steel [J]. Acta Metallurgica Sinica (English Letters), 2020, 33(11): 1455-1465. |
[14] | Yun Shi, Xiaojing Xiong, Zhengwu Liu, Yi Yang, Juan Hou, Songquan Wu, Jeremy H. Rao, Kai Zhang, Aijun Huang. Mechanical Property Evaluation of a SLMed Martensitic Stainless Steel [J]. Acta Metallurgica Sinica (English Letters), 2020, 33(11): 1466-1476. |
[15] | Jun-Lei Zhang, Han Liu, Yu-Lu Xie, Guang-Sheng Huang, Xiang Chen, Bin Jiang, Ai-Tao Tang, Fu-Sheng Pan. Microstructure Distribution and Tensile Anisotropy of Dissimilar Friction Stir Welded AM60 and AZ31 Magnesium Alloys [J]. Acta Metallurgica Sinica (English Letters), 2020, 33(11): 1487-1504. |
Viewed | ||||||
Full text |
|
|||||
Abstract |
|
|||||