J. Mater. Sci. Technol. ›› 2024, Vol. 188: 98-104.DOI: 10.1016/j.jmst.2023.11.063
• Research Article • Previous Articles Next Articles
Yujie Maa,b,1,*, Yilun Renb,1, Dongyue Sunb,1, Biao Wangb, Hao Wub, Haifeng Bianb, Jiangdong Caoa, Xueyu Caoa, Feng Dinga, Jiahao Lua, Xiangkang Mengb,**
Received:2023-10-11
Revised:2023-11-14
Accepted:2023-11-25
Published:2024-07-20
Online:2024-01-13
Contact:
*School of Intelligent Manufacturing and Information, Jiangsu Shipping College, Nantong 226010, China. **E-mail addresses: myj@nju.edu.cn (Y. Ma), mengxk@nju.edu.cn (X. Meng).
About author:1Yujie Ma, Yilun Ren and Dongyue Sun contributed equally to this work.
Yujie Ma, Yilun Ren, Dongyue Sun, Biao Wang, Hao Wu, Haifeng Bian, Jiangdong Cao, Xueyu Cao, Feng Ding, Jiahao Lu, Xiangkang Meng. High entropy alloy nanoparticles dual-decorated with nitrogen-doped carbon and carbon nanotubes as promising electrocatalysts for lithium-sulfur batteries[J]. J. Mater. Sci. Technol., 2024, 188: 98-104.
| [1] D.C. Lin, Y.Y. Liu, Y. Cui, Nat. Nanotechnol. 12 (2017) 194-206. [2] C. Zhao, G.L. Xu, Z. Yu, L. Zhang, I. Hwang, Y.X. Mo, Y. Ren, L. Cheng, C.J. Sun, Y. Ren, X. Zuo, J.T. Li, S.G. Sun, K. Amine, T. Zhao, Nat. Nanotechnol. 16 (2021) 166-173. [3] P.G. Bruce, S.A. Freunberger, L.J. Hardwick, J.M. Tarascon, Nat. Mater. 11 (2011) 19-29. [4] Q. Pang, X. Liang, C.Y. Kwok, L.F. Nazar, Nat. Energy 1 (2016) 16132. [5] X. Ji, K.T. Lee, L.F. Nazar, Nat. Mater. 8 (2009) 500-506. [6] C. Senthil, S.S. Kim, H.Y. Jung, Nat. Commun. 13 (2022) 145. [7] J. Zhou, R. Li, X. Fan, Y. Chen, R. Han, W. Li, J. Zheng, B. Wang, X. Li, Energy Environ. Sci. 7 (2014) 2715. [8] R. Fang, S. Zhao, Z. Sun, D.W. Wang, H.M. Cheng, F. Li, Adv. Mater. 29 (2017) 201606823. [9] Z. Shi, M. Li, J. Sun, Z. Chen, Adv. Energy Mater. 11 (2021) 2100332. [10] S. Huang, Z. Wang, Y. Von Lim, Y. Wang, Y. Li, D. Zhang, H.Y. Yang, Adv. Energy Mater. 11 (2021) 2003689. [11] S. Yao, M. Bi, H. Yu, C. Zhang, X. Zhang, H. Liu, T. Zhang, J. Xiang, X. Shen, Appl. Surf. Sci. 598 (2022) 153787. [12] S. Yao, C. Zhang, F. Xie, S. Xue, K. Gao, R. Guo, X. Shen, T. Li, S. Qin, A.C.S.Sus-tain, Chem.Eng. 8 (2020) 2707-2715. [13] S. Yao, Y. He, Y. Wang, M. Bi, Y. Liang, A. Majeed, Z. Yang, X. Shen, J. Colloid Interface Sci. 601 (2021) 209-219. [14] M. Bi, M. Chao, C. Zhang, H. Yu, X. Zhang, H. Liu, T. Zhang, J. Mi, X. Shen, S. Yao, J. Alloys Compd. 934 (2023) 167916. [15] S. Bai, X. Liu, K. Zhu, S. Wu, H. Zhou, Nat. Energy 1 (2016) 16094. [16] E. Cha, M.D. Patel, J. Park, J. Hwang, V. Prasad, K. Cho, W. Choi, Nat. Nanotech-nol. 13 (2018) 337-344. [17] Q. Hu, J. Lu, C. Yang, C. Zhang, J. Hu, S. Chang, H. Dong, C. Wu, Y. Hong, L. Zhang, Small 16 (2020) 2002046. [18] C. Chen, Q. Jiang, H. Xu, Y. Zhang, B. Zhang, Z. Zhang, Z. Lin, S. Zhang, Nano Energy 76 (2020) 105033. [19] B. Yu, F. Ma, D. Chen, K. Srinivas, X. Zhang, X. Wang, B. Wang, W. Zhang, Z. Wang, W. He, Y. Chen, J. Mater. Sci.Technol. 90 (2021) 37-44. [20] B. Liu, X. Wu, S. Wang, Z. Tang, Q. Yang, G.-H. Hu, C. Xiong, Nanomaterials 7 (2017) 196. [21] C. Li, R. Liu, Y. Xiao, F. Cao, H. Zhang, Energy Storage Mater. 40 (2021) 439-460. [22] Q. Liang, S. Wang, X. Jia, J. Yang, Y. Li, D. Shao, L. Feng, J. Liao, H. Song, J. Mater. Sci.Technol. 151 (2023) 89-98. [23] N. Li, F. Chen, X. Chen, Z. Chen, Y. Qi, X. Li, X. Sun, J. Mater. Sci.Technol. 55 (2020) 152-158. [24] Y. Ren, Q. Zhai, B. Wang, L. Hu, Y. Ma, Y. Dai, S. Tang, X. Meng, Chem. Eng. J. 439 (2022) 135535. [25] B. Wang, D. Sun, Y. Ren, X. Zhou, Y. Ma, S. Tang, X. Meng, J. Mater. Sci.Technol. 125 (2022) 97-104. [26] R. Yan, T. Ma, M. Cheng, X. Tao, Z. Yang, F. Ran, S. Li, B. Yin, C. Cheng, W. Yang, Adv. Mater. 33 (2021) e2008784. [27] Z. Wang, H. Ge, S. Liu, G. Li, X. Gao, Energy Environ. Mater. 6 (2023) 40-49. [28] S. Wang, W. Huo, F. Fang, Z. Xie, J.K. Shang, J. Jiang, Chem. Eng. J. 429 (2022) 132410. [29] H. Li, Y. Han, H. Zhao, W. Qi, D. Zhang, Y. Yu, W. Cai, S. Li, J. Lai, B. Huang, L. Wang, Nat. Commun. 11 (2020) 5437. [30] R. Liu, Z. Liu, W. Liu, Y. Liu, X. Lin, Y. Li, P. Li, Z. Huang, X. Feng, L. Yu, D. Wang, Y. Ma, W. Huang, Small 15 (2019) e1804533. [31] K. Yuan, T. Song, D. Wang, Y. Zou, J. Li, X. Zhang, Z. Tang, W. Hu, Nanoscale 10 (2018) 1591-1597. [32], Carbothermal shock synthesis of high-entropy-alloy nanoparticles, Science 359 (2018) 1489-1494. [33] Y. Ren, J. Hu, H. Zhong, L. Zhang, J. Alloys Compd. 837 (2020) 155498. [34] Y. Wang, H. Wang, J. Ye, L. Shi, X. Feng, Chem. Eng. J. 383 (2020) 123096. [35] Y. Huang, D. Lv, Z. Zhang, Y. Ding, F. Lai, Q. Wu, H. Wang, Q. Li, Y. Cai, Z. Ma, Chem. Eng. J. 387 (2020) 124122. [36] J. Gu, L. Sun, Y. Zhang, Q. Zhang, X. Li, H. Si, Y. Shi, C. Sun, Y. Gong, Y. Zhang, Chem. Eng. J. 385 (2020) 123454. [37] J. Dai, D. Zhao, W. Sun, X. Zhu, L.-J. Ma, Z.Wu, C. Yang, Z. Cui, L. Li, S. Chen, ACS Catal. 9 (2019) 10761-10772. [38] P. Li, H. Lv, Z. Li, X. Meng, Z. Lin, R. Wang, X. Li, Adv. Mater. 33 (2021) 2007803. [39] Z. Wu, S. Chen, L. Wang, Q. Deng, Z. Zeng, J. Wang, S. Deng, Energy Storage Mater. 38 (2021) 381-388. [40] Z. Zhao, Z. Yi, H. Li, R. Pathak, Z. Yang, X. Wang, Q. Qiao, Nano Energy 81 (2021) 105621. [41] Y. Ren, S. Chang, L. Hu, B. Wang, D. Sun, H. Wu, Y. Ma, Y. Yang, S. Tang, X. Meng, J. Mater. Chem. A 10 (2022) 17532-17543. [42] Y. Wang, Z. Deng, J. Huang, H. Li, Z. Li, X. Peng, Y. Tian, J. Lu, H. Tang, L. Chen, Z. Ye, Energy Storage Mater. 36 (2021) 466-477. [43] J. Cai, Z. Sun, W. Cai, N. Wei, Y. Fan, Z. Liu, Q. Zhang, J. Sun, Adv. Funct. Mater. 31 (2021) 2100586. [44] R. Yan, Z. Zhao, M. Cheng, Z. Yang, C. Cheng, X. Liu, B. Yin, S. Li, Angew. Chem. Int. Ed. Engl. (2022) 202215414. [45] Y. Ren, Y. Ma, B. Wang, S. Chang, Q. Zhai, H. Wu, Y. Dai, Y. Yang, S. Tang, X. Meng, Small 19 (2023) 2300065. [46] Y. Song, Z. Sun, Z. Fan, W. Cai, Y. Shao, G. Sheng, M. Wang, L. Song, Z. Liu, Q. Zhang, J. Sun, Nano Energy 70 (2020) 104555. |
| [1] | Shubin Wang, Da Shu, Peiying Shi, Xianbing Zhang, Bo Mao, Donghong Wang, Peter.K. Liaw, Baode Sun. TiZrHfNb refractory high-entropy alloys with twinning-induced plasticity [J]. J. Mater. Sci. Technol., 2024, 187(0): 72-85. |
| [2] | Lingkun Zhang, Rui Huang, Fengrui Zhou, Abdukadir Amar, Hongwei Yan, Yongan Zhang, Yiping Lu. Remarkable improved strength and ductility in brittle eutectic high-entropy alloy via a novel spheroidization and recrystallization strategy [J]. J. Mater. Sci. Technol., 2024, 187(0): 177-187. |
| [3] | Xun Shen, Baoru Sun, Shengwei Xin, Shuaijun Ding, Tongde Shen. Creep in a nanocrystalline VNbMoTaW refractory high-entropy alloy [J]. J. Mater. Sci. Technol., 2024, 187(0): 221-229. |
| [4] | Boxuan Cao, Wuxin Zhao, Lijun Jing, Yilu Zhao, Jinxiong Hou, Suzhu Yu, Guoqiang Xie, Weihong Liu, Tao Yang, Jun Wei. Heterostructure high-entropy alloys with exceptional thermal stability and resistance towards intermediate temperature embrittlement [J]. J. Mater. Sci. Technol., 2024, 188(0): 228-233. |
| [5] | Yuxiang Chen, Ningyu Li, Yijie Wang, Kang Liu, Yongqin Chang, Mingyang Li. Phase evolution and mechanical properties of low-activation refractory high-entropy alloy Ti1.5ZrV0.5Ta0.5 [J]. J. Mater. Sci. Technol., 2024, 174(0): 145-156. |
| [6] | Pei-Yu Cao, Jing Wang, Ping Jiang, Yun-Jiang Wang, Fu-Ping Yuan, Xiao-Lei Wu. Prediction of chemical short-range order in high-/medium-entropy alloys [J]. J. Mater. Sci. Technol., 2024, 169(0): 115-123. |
| [7] | Xiaoyang Liu, Jingbo Zhang, Kangli Liu, Shijie Zhang, Rouhan Hou, Xiaoyi Hu, Peng Zhang, Guosheng Shao. Regulation of the pore structure of carbon nanosheets based electrocatalyst for efficient polysulfides phase conversions [J]. J. Mater. Sci. Technol., 2024, 171(0): 37-46. |
| [8] | Jiacheng Niu, Zhiqiang Fu, Weiping Chen, Tiwen Lu, Liangyan Hao, Wei Xiong, Haiming Wen. Hierarchical microstructure enables high strength and good ductility in as-cast Fe27 Ni35 Cr18.25 Al13.75 Co2 Ti2 Mo2 high-entropy alloy [J]. J. Mater. Sci. Technol., 2024, 179(0): 9-21. |
| [9] | Jian Yiing Loh, Feng Ming Yap, Wee-Jun Ong. 2D/2D heterojunction interface: Engineering of 1T/2H MoS2 coupled with Ti3 C2 Tx heterostructured electrocatalysts for pH-universal hydrogen evolution [J]. J. Mater. Sci. Technol., 2024, 179(0): 86-97. |
| [10] | Hao Kang, Kaikai Song, Leilei Li, Xiaoming Liu, Yandong Jia, Gang Wang, Yaocen Wang, Si Lan, Xin Lin, Lai-Chang Zhang, Chongde Cao. Simultaneously healing cracks and strengthening additively manufactured Co34Cr32Ni27Al4Ti3 high-entropy alloy by utilizing Fe-based metallic glasses as a glue [J]. J. Mater. Sci. Technol., 2024, 179(0): 125-137. |
| [11] | Nan-Jun Liu, Zhang-Jie Wang, Jun Ding, Mark Asta, Robert O. Ritchie, Bin Gan, Evan Ma, Zhi-Wei Shan. Origin of the high propensity for nanoscale deformation twins in CrCoNi medium-entropy alloy [J]. J. Mater. Sci. Technol., 2024, 183(0): 63-71. |
| [12] | Guoqing Huang, Bo Li, Yinan Chen, Fuzhen Xuan. Nanotwining induced by tensile fatigue and dynamic impact of laser powder bed fusion additively manufactured CoCrFeNi high-entropy alloy [J]. J. Mater. Sci. Technol., 2024, 183(0): 241-257. |
| [13] | Yanan Liu, Xiaoxiao Huang, Honglei Zhang, Guangyu Qin, Xiaoshuang Wang, Meixiu Song, Hongbo Liang, Jingzhe Hong, Yudong Huang. A bi-functional catalyst strategy to selectively regulate sulfur redox kinetics in lithium-sulfur batteries [J]. J. Mater. Sci. Technol., 2024, 173(0): 54-62. |
| [14] | Dongyue Li, Peter K. Liaw, Lu Xie, Yong Zhang, Wenrui Wang. Advanced high-entropy alloys breaking the property limits of current materials [J]. J. Mater. Sci. Technol., 2024, 186(0): 219-230. |
| [15] | Heechan Jung, Sangwon Lee, Taehyeok Kang, Alireza Zargaran, Pyuck-Pa Choi, Seok Su Sohn. Fe-based high-entropy alloy with excellent mechanical properties enabled by nanosized precipitates and heterogeneous grain distribution [J]. J. Mater. Sci. Technol., 2024, 181(0): 71-81. |
| Viewed | ||||||
|
Full text |
|
|||||
|
Abstract |
|
|||||
WeChat
