Pillared MXene with Ultralarge Interlayer Spacing as a Stable Matrix for High Performance Sodium Metal Anodes

被引:318
作者
Luo, Jianmin [1 ,2 ]
Wang, Chuanlong [1 ]
Wang, Huan [1 ]
Hu, Xiaofei [1 ]
Matios, Edward [1 ]
Lu, Xuan [1 ]
Zhang, Wenkui [2 ]
Tao, Xinyong [2 ]
Li, Weiyang [1 ]
机构
[1] Dartmouth Coll, Thayer Sch Engn, 14 Engn Dr, Hanover, NH 03755 USA
[2] Zhejiang Univ Technol, Coll Mat Sci & Engn, Hangzhou 310014, Zhejiang, Peoples R China
基金
中国国家自然科学基金;
关键词
interlayer space; MXene; pillared structures; sodium metal; Ti3C2; 2-DIMENSIONAL TITANIUM CARBIDE; ION BATTERIES; CURRENT COLLECTOR; LITHIUM; NA; TI3C2; LI; STORAGE; ENCAPSULATION; ELECTROLYTES;
D O I
10.1002/adfm.201805946
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Sodium (Na) metal is a promising alternative to lithium metal as an anode material for the next-generation energy storage systems due to its high theoretical capacity, low cost, and natural abundance. However, dendritic/mossy Na growth caused by uncontrollable plating/stripping results in serious safe concerns and rapid electrode degradation. This study presents Sn2+ pillared Ti3C2 MXene serving as a stable matrix for high-performance dendrite-free Na metal anode. The intercalated Sn2+ between Ti3C2 layers not only induces Na to nucleate and grow within Ti3C2 interlayers, but also endows the Ti3C2 with larger interlayer space to accommodate the deposited Na by taking advantage of the "pillar effect," contributing to uniform Na deposition. As a result, the pillar-structured MXene-based Na metal electrode could enable high current density (up to 10 mA cm(-2)) along with high areal capacity (up to 5 mAh cm(-2)) over long-term cycling (up to 500 cycles). The full cell using MXene-based Na metal anode exhibits superior electrochemical performance than that using host-less commercial Na. It is believed that the well-controlled MXene-based Na anode not only extends the application scope of MXene, but also provides guidance in designing high-performance Na metal batteries.
引用
收藏
页数:12
相关论文
共 66 条
[1]   Building better batteries [J].
Armand, M. ;
Tarascon, J. -M. .
NATURE, 2008, 451 (7179) :652-657
[2]   Enabling room temperature sodium metal batteries [J].
Cao, Ruiguo ;
Mishra, Kuber ;
Li, Xiaolin ;
Qian, Jiangfeng ;
Engelhard, Mark H. ;
Bowden, Mark E. ;
Han, Kee Sung ;
Mueller, Karl T. ;
Henderson, Wesley A. ;
Zhang, Ji-Guang .
NANO ENERGY, 2016, 30 :825-830
[3]   Array of nanosheets render ultrafast and high-capacity Na-ion storage by tunable pseudocapacitance [J].
Chao, Dongliang ;
Zhu, Changrong ;
Yang, Peihua ;
Xia, Xinhui ;
Liu, Jilei ;
Wang, Jin ;
Fan, Xiaofeng ;
Savilov, Serguei V. ;
Lin, Jianyi ;
Fan, Hong Jin ;
Shen, Ze Xiang .
NATURE COMMUNICATIONS, 2016, 7
[4]   3D Flexible Carbon Felt Host for Highly Stable Sodium Metal Anodes [J].
Chi, Shang-Sen ;
Qi, Xing-Guo ;
Hu, Yong-Sheng ;
Fan, Li-Zhen .
ADVANCED ENERGY MATERIALS, 2018, 8 (15)
[5]   Formation of Zintl Ions and Their Configurational Change during Sodiation in Na-Sn Battery [J].
Choi, Yong-Seok ;
Byeon, Young-Woon ;
Ahn, Jae-Pyoung ;
Lee, Jae-Chul .
NANO LETTERS, 2017, 17 (02) :679-686
[6]   Designing solid-liquid interphases for sodium batteries [J].
Choudhury, Snehashis ;
Wei, Shuya ;
Ozhabes, Yalcin ;
Gunceler, Deniz ;
Zachman, Michael J. ;
Tu, Zhengyuan ;
Shin, Jung Hwan ;
Nath, Pooja ;
Agrawal, Akanksha ;
Kourkoutis, Lena F. ;
Arias, Tomas A. ;
Archer, Lynden A. .
NATURE COMMUNICATIONS, 2017, 8
[7]   Ti3C2 MXene-Derived Sodium/Potassium Titanate Nanoribbons for High-Performance Sodium/Potassium Ion Batteries with Enhanced Capacities [J].
Dong, Yanfeng ;
Wu, Zhong-Shuai ;
Zheng, Shuanghao ;
Wang, Xiaohui ;
Qin, Jieqiong ;
Wang, Sen ;
Shi, Xiaoyu ;
Bao, Xinhe .
ACS NANO, 2017, 11 (05) :4792-4800
[8]   Conductive two-dimensional titanium carbide 'clay' with high volumetric capacitance [J].
Ghidiu, Michael ;
Lukatskaya, Maria R. ;
Zhao, Meng-Qiang ;
Gogotsi, Yury ;
Barsoum, Michel W. .
NATURE, 2014, 516 (7529) :78-U171
[9]   The Li-Ion Rechargeable Battery: A Perspective [J].
Goodenough, John B. ;
Park, Kyu-Sung .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2013, 135 (04) :1167-1176
[10]  
Hartmann P, 2013, NAT MATER, V12, P228, DOI [10.1038/NMAT3486, 10.1038/nmat3486]