J. Mater. Sci. Technol. ›› 2026, Vol. 243: 220-227.DOI: 10.1016/j.jmst.2025.03.095
• Research article • Previous Articles Next Articles
Yunfan Wang1, Pengfei Dang1, Yuehui Xian, Yumei Zhou*, Xiangdong Ding*, Jun Sun, Dezhen Xue*
Received:2025-01-09
Revised:2025-03-23
Accepted:2025-03-23
Published:2026-02-01
Online:2025-05-22
Contact:
*E-mail addresses: About author:1These authors contributed equally to this work.
Yunfan Wang, Pengfei Dang, Yuehui Xian, Yumei Zhou, Xiangdong Ding, Jun Sun, Dezhen Xue. Uncertainty-aware multi-objective optimization for high work output and low hysteresis in TiNiCuHfCo shape memory alloys[J]. J. Mater. Sci. Technol., 2026, 243: 220-227.
| [1] M. Kim, J. Heo, H. Rodrigue, H. Lee, S. Pané, M. Han, S. Ahn, Adv. Mater. 35(2023) 2208517. [2] J.M. Jani, M. Leary, A. Subic, M.A. Gibson, Mater. Des. 56(2014) 1078-1113. [3] A. Rao, A .R. Srinivasa, J.N. Reddy, in: Design of Shape Memory Alloy (SMA) Actuators, Springer International Publishing, Cham, 2015, pp. 1-31. [4] K. Otsuka, X. Ren, Prog. Mater. Sci. 50(2005) 511-678. [5] A. Nespoli, S. Besseghini, S. Pittaccio, E. Villa, S. Viscuso, Sens. Actuators A 158 (2010) 149-160. [6] Y. Fu, H. Du, W. Huang, S. Zhang, M. Hu, Sens. Actuators A 112 (2004) 395-408. [7] W. Huang, Mater. Des. 23(2002) 11-19. [8] H.E. Karaca, S.M. Saghaian, G. Ded, H. Tobe, B. Basaran, H.J. Maier, R.D. Noebe, Y.I .Chumlyakov, Acta Mater. 61(2013) 7422-7431. [9] P. Chowdhury, H. Sehitoglu, Prog. Mater. Sci. 88(2017) 49-88. [10] H. Gu, L. Bumke, C. Chluba, E. Quandt, R.D. James, Mater. Today 21 (2018) 265-277. [11] K.C. Atli, B.E. Franco, I. Karaman, D. Gaydosh, R.D. Noebe, Mater. Sci. Eng. A 574 (2013) 9-16. [12] K. Huang, H. Yin, M. Li, Q. Sun, Mater. Sci. Eng. A 856 (2022) 143872. [13] P. Šittner, P. Sedlák, H. Seiner, P. Sedmák, J. Pilch, R. Delville, L. Heller, L. Kadĕrávek, Prog. Mater. Sci. 98(2018) 249-298. [14] J. Frenzel, J.A. Burow, E.J. Payton, S. Rezanka, G. Eggeler, Adv. Eng. Mater. 13(2011) 256-268. [15] P. Dang, L. Zhang, Y. Zhou, C. Li, X. Ding, J. Sun, D. Xue, Adv. Eng. Mater. 26(2024) 2301438. [16] G.S. Bigelow, A. Garg, S.A. Padula, D.J. Gaydosh, R.D. Noebe, Scr. Mater. 64(2011) 725-728. [17] P. Dang, Y. Zhou, J. Pang, X. Ding, J. Sun, T. Lookman, D. Xue, Scr. Mater. 226(2023) 115263. [18] B. Kockar, K.C. Atli, J. Ma, M. Haouaoui, I. Karaman, M. Nagasako, R. Kainuma, Acta Mater. 58(2010) 6411-6420. [19] X. Yi, B. Sun, W. Gao, X. Meng, Z. Gao, W. Cai, L. Zhao, J. Mater. Sci.Technol. 42(2020) 113-121. [20] A. Shuitcev, D.V. Gunderov, B. Sun, L. Li, R.Z. Valiev, Y.X. Tong, J. Mater. Sci.Technol. 52(2020) 218-225. [21] A.V. Shuitcev, Q.Z. Li, M.G. Khomutov, L. Li, Y.X. Tong, J. Mater. Sci.Technol. 209(2025) 124-127. [22] D. Xue, P.V. Balachandran, J. Hogden, J. Theiler, D. Xue, T. Lookman, Nat. Com- mun. 7(2016) 11241. [23] D. Xue, D. Xue, R. Yuan, Y. Zhou, P.V. Balachandran, X. Ding, J. Sun, T. Lookman, Acta Mater. 125(2017) 532-541. [24] S.H. Zadeh, A. Behbahanian, J. Broucek, M. Fan, G. Vazquez, M. Noroozi, W. Tre- hern, X.Qian, I. Karaman, R. Arroyave, Comput. Mater. Sci. 226(2023) 112225. [25] X. Tian, D. Shi, K. Zhang, H. Li, L. Zhou, T. Ma, C. Wang, Q. Wen, C. Tan, Comput. Mater. Sci. 215(2022) 111811. [26] S. He, Y. Wang, Z. Zhang, F. Xiao, S. Zuo, Y. Zhou, X. Cai, X. Jin, Mater. Des. 225(2023) 111513. [27] W. Trehern, R. Ortiz-Ayala, K.C. Atli, R. Arroyave, I. Karaman, Acta Mater. 228(2022) 117751. [28] U.M.H.U. Kankanamge, J. Reiner, X. Ma, S.C. Gallo, W. Xu, J. Mater. Sci. 57(2022) 19447-19465. [29] J. Broucek, D. Khatamsaz, C. Cakirhan, S. Hossein Zadeh, M. Fan, G. Vazquez, K. C. Atli, X. Qian, R. Arroyave, I. Karaman, Acta Mater. (2024) 120651. [30] S. He, F. Xiao, R. Hou, S. Zuo, Y. Zhou, X. Cai, Z. Li, Y. Wang, A. Catal-Isik, E. Galindo-Nava, X. Jin, Rare Metals 43 (2024) 6606-6624. [31] Y. Xian, P. Dang, Y. Tian, X. Jiang, Y. Zhou, X. Ding, J. Sun, T. Lookman, D. Xue, Acta Mater. 274(2024) 120017. [32] Y. Tian, R. Yuan, D. Xue, Y. Zhou, Y. Wang, X. Ding, J. Sun, T. Lookman, Adv. Sci. 8(2021) 2003165. [33] Y. Tian, B. Hu, P. Dang, J. Pang, Y. Zhou, D. Xue, Adv. Sci. 11(2024) 2406216. [34] Y. Chen, Y. Tian, Y. Zhou, D. Fang, X. Ding, J. Sun, D. Xue, J. Alloy. Compd. 844(2020) 156159. [35] B. Shi, T. Lookman, D. Xue, Mater. Genome. Eng. Adv. 1(2023) e14. [36] H. Zhang, H. Fu, X. He, C. Wang, L. Jiang, L. Chen, J. Xie, Acta Mater. 200(2020) 803-810. [37] H. Zhang, H. Fu, S. Zhu, W. Yong, J. Xie, Acta Mater. 215(2021) 117118. [38] B. Cao, T. Su, S. Yu, T. Li, T. Zhang, J. Zhang, Z. Dong, T. Zhang, Mater. Des. 241(2024) 112921. [39] Q. Wei, B. Cao, H. Yuan, Y. Chen, K. You, S. Yu, T. Yang, Z. Dong, T. Zhang, npj Comput.Mater. 9(2023) 201. [40] D.R. Jones, M. Schonlau, W.J. Welch, J. Global Optim. 13(1998) 455-492. [41] N. Babacan, M. Bilal, C. Hayrettin, J. Liu, O. Benafan, I. Karaman, Acta Mater. 157(2018) 228-244. [42] S.M. Saghaian, H.E. Karaca, H. Tobe, A.S. Turabi, S. Saedi, S.E. Saghaian, Y.I .Chumlyakov, R.D. Noebe, Acta Mater. 134(2017) 211-220. [43] P. Dang, F. Ye, Y. Zhou, L. Ding, J. Pang, L. Zhang, X. Ding, J. Sun, S. Dai, T. Look- man, D.Xue, Acta Mater. 229(2022) 117802. [44] J. Cui, Y.S. Chu, O.O. Famodu, Y. Furuya, J. Hattrick-Simpers, R.D. James, A. Lud- wig, S.Thienhaus, M. Wuttig, Z. Zhang, I. Takeuchi, Nat. Mater. 5(2006) 286-290. [45] J. Frenzel, A. Wieczorek, I. Opahle, B. Maaß, R. Drautz, G. Eggeler, Acta Mater. 90(2015) 213-231. [46] J. Cui, X. Ren, Appl. Phys. Lett. 105(2014) 061904. [47] T. Umale, D. Salas, B. Tomes, R. Arroyave, I. Karaman, Scr. Mater. 161(2019) 78-83. [48] C. Chen, N. Lu, J. Alloy. Compd. 819(2020) 152988. [49] B. Kockar, I. Karaman, J.I. Kim, Y.I. Chumlyakov, J. Sharp, C.J. Yu, Acta Mater. 56(2008) 3630-3646. [50] S. Chang, S. Wu, L. Wu, Intermetallics 18 (2010) 965-971. [51] J.I. Kim, S. Miyazaki, Acta Mater. 53(2005) 4545-4554. [52] H. Chen, F. Xiao, X. Liang, Z. Li, Z. Li, X. Jin, T. Fukuda, Acta Mater. 177(2019) 169-177. [53] I.V. Kireeva, Z.V. Pobedennaya, Y.I. Chumlyakov, E.S. Marchenko, Mater. Lett. 305(2021) 130773. [54] I.V. Kireeva, Z.V. Pobedennaya, Y.I. Chumlyakov, E.S. Marchenko, Mater. Lett. 281(2020) 128646. [55] T. Nam, T. Saburi, K. Shimizu, Mater. Trans. 31(1990) 959-967. [56] H. Kim, T. Jinguu, T. Nam, S. Miyazaki, Scr. Mater. 65(2011) 846-849. [57] J.N. Lemke, F. Gallino, M. Cresci, A. Coda, Scr. Mater. 191(2021) 161-166. [58] S. Rehman, M. Khan, A.N. Khan, L. Ali, S. Zaman, M. Waseem, L. Ali, S. Jaffery, Mater. Sci. Eng. A 619 (2014) 171-179. [59] W. Trehern, H. Ozcan, B. Franco, N. Hite, N. Malone, B. Loveall, T.D. Morrison, O. Benafan, I. Karaman, Mater. Lett. 308(2022) 131246. [60] H. Lin, P. Hua, K. Huang, Q. Li, Q. Sun, Scr. Mater. 226(2023) 115227. [61] P. Hua, M. Xia, Y. Onuki, Q. Sun, Nat. Nanotechnol. 16(2021) 409-413. [62] K.F. Hane, T.W. Shield, Acta Mater. 47(1999) 2603-2617. [63] R. Zarnetta, R. Takahashi, M.L. Young, A. Savan, Y. Furuya, S. Thienhaus, B. Maaß, M. Rahim, J. Frenzel, H. Brunken, Y. Chu, V. Srivastava, R.D. James, I. Takeuchi, G. Eggeler, A. Ludwig, Adv. Funct. Mater. 20(2010) 1917-1923. |
| [1] | Xian Wu, Yuting Dai, Mengqi Sheng, Yu Diao, Sihao Xia. Adsorption behavior and surface modification of metal atoms on AlGaN surfaces with multiple configurations: First principle calculation assisted by machine learning [J]. J. Mater. Sci. Technol., 2026, 241(0): 168-179. |
| [2] | Chang-jie Ding, Xiao-yang Wang, Xiang-yan Li, Wei-shu Yang, Xiao-lin Li, Yan-ge Zhang, Yi-chun Xu, Chang-song Liu, Xuebang Wu. Machine learning-based interatomic potential for simulating irradiation damage mechanisms in ZrC [J]. J. Mater. Sci. Technol., 2026, 242(0): 75-91. |
| [3] | Hao Hu, Fan Zhao, Wei Yong, Lei Jiang, Zhihao Zhang, Jianxin Xie. A machine learning strategy to achieve dual-synchronous property improvement of aviation Al-Cu-Mg alloy [J]. J. Mater. Sci. Technol., 2026, 244(0): 208-230. |
| [4] | Yuhang Wang, Yaqin Zhang, Ninggui Ma, Jun Zhao, Yu Xiong, Shuang Luo, Jun Fan. Machine learning accelerated catalysts design for CO reduction: An interpretability and transferability analysis [J]. J. Mater. Sci. Technol., 2025, 213(0): 14-23. |
| [5] | Shijiang Zhong, Mingfang Qian, Xinxin Shen, Shuhe Gong, Liangbo Sun, Ping Shen, Xuexi Zhang, Lin Geng. Interstitial-oxygen-induced γ-phase precipitation and martensitic transformation behavior in Ni-Mn-Sn-Co alloy prepared through binder jetting and sintering [J]. J. Mater. Sci. Technol., 2025, 214(0): 272-277. |
| [6] | Ze Pu, Dong Du, Changyong Chen, Zibin Chen, Kangcheung Chan, Baohua Chang. In-situ synthesis of NiTi shape memory alloys with tunable chemical composition and thermomechanical response by dual-wire-feed electron beam directed energy deposition [J]. J. Mater. Sci. Technol., 2025, 216(0): 209-225. |
| [7] | Wang Yi, Sa Ma, Jianbao Gao, Jing Zhong, Tianchuang Gao, Shenglan Yang, Lijun Zhang, Qian Li. A novel atomic mobility model for alloys under pressure and its application in high pressure heat treatment Al-Si alloys by integrating CALPHAD and machine learning [J]. J. Mater. Sci. Technol., 2025, 217(0): 116-127. |
| [8] | Junliang Chen, Dongdong Jin, Qianqian Wang, Xing Ma. Programming ferromagnetic soft materials for miniature soft robots: Design, fabrication, and applications [J]. J. Mater. Sci. Technol., 2025, 219(0): 271-287. |
| [9] | Monunith Anithkumar, Nirmal Prashanth Maria Joseph Raj, Asokan Poorani Sathya Prasanna, Thanjan Shaji Bincy, Sang-Jae Kim. Enhancing triboelectrification with synergistic effect of xBNT-(1-x)BKT fillers and machine learning enabled advanced air mouse technology [J]. J. Mater. Sci. Technol., 2025, 231(0): 105-114. |
| [10] | Yaochen Yu, Jiahui Fan, Yuefeng Lei, Haiyang Niu. Structure exploration of gallium based on machine-learning potential [J]. J. Mater. Sci. Technol., 2025, 232(0): 239-245. |
| [11] | Xuejie Zhu, Xuexi Zhang, Mingfang Qian, Lin Geng. Microstructure evolution during superelastic cycles and related elastocaloric effect in N-doped Ti-based shape memory alloys [J]. J. Mater. Sci. Technol., 2025, 234(0): 1-14. |
| [12] | Mengfei Feng, Guanjie Yu, Kaifu Zhang, Yuan Li, Hui Cheng, Biao Liang. Electromagnetic-mechanical collaborative design of high-performance electromagnetic sandwich metastructure by machine learning based genetic optimization [J]. J. Mater. Sci. Technol., 2025, 235(0): 189-196. |
| [13] | Chenghao Pei, Qingshuang Ma, Jingwen Zhang, Liming Yu, Huijun Li, Qiuzhi Gao, Jie Xiong. A novel model to predict oxidation behavior of superalloys based on machine learning [J]. J. Mater. Sci. Technol., 2025, 235(0): 232-243. |
| [14] | Shangyan Zhao, Chao Zhou, Jianxin Hou, Peipei Li, Haodong Che,Yuzhe Zheng, Jiaqi Gao, Yixuan Shi, Chengcong Huang, Xuan Li, Yuchen Lu, Yuzhi Wu, Hongpeng Zhou, Yageng Li, Luning Wang. Machine learning-guided process optimization and comprehensive evaluation of additively manufactured biodegradable Zn-2Cu alloy [J]. J. Mater. Sci. Technol., 2025, 236(0): 245-261. |
| [15] | Siwen Zhang, Quan Li, Yan Xu, Meimei Wang, Guangfa Huang, Mingjiang Jin, Yuntian Zhu, Weijie Lu. Improving the damping capacity of NiTiHf alloys with nanoscale spherical Nb phases [J]. J. Mater. Sci. Technol., 2025, 236(0): 310-316. |
| Viewed | ||||||
|
Full text |
|
|||||
|
Abstract |
|
|||||
WeChat
