
Printable Two-Dimensional V2O5/MXene Heterostructure Cathode for Lithium-Ion Battery
Author(s) -
Yang Wang,
Ties Lubbers,
Rui Xia,
Yizhou Zhang,
Mohammad Mehrali,
Mark Huijben,
Johan E. ten Elshof
Publication year - 2021
Publication title -
journal of the electrochemical society
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.258
H-Index - 271
eISSN - 1945-7111
pISSN - 0013-4651
DOI - 10.1149/1945-7111/abdef2
Subject(s) - heterojunction , materials science , cathode , electrochemistry , lithium (medication) , battery (electricity) , electrode , nanotechnology , optoelectronics , composite number , layer (electronics) , ion , chemical engineering , composite material , electrical engineering , chemistry , medicine , power (physics) , physics , organic chemistry , quantum mechanics , endocrinology , engineering
Two-dimensional nanosheets show promise as electrode materials for high electrochemical performance lithium-ion batteries owing to their unique properties. However, individual nanosheets cannot meet all the required properties for batteries in one material to achieve optimal performance. Here, we demonstrate a new type of two-dimensional heterostructure cathode material for lithium-ion batteries by inkjet printing a composite ink based on high capacity V 2 O 5 nanosheets and high electronic conductivity Ti 3 C 2 T x nanosheets. The excellent electronic conductivity of Ti 3 C 2 T x nanosheets and layer-by-layer heterostructure design enable fast electron transport and minimization of detrimental volume changes during the electrochemical process, respectively. The printed cathodes exhibit a high capacity of 321 mAh g −1 at 1C, high-rate capability of 112 mAh g −1 at 10.5C and good cycling stability after 680 cycles with 91.8% capacity retention, indicating high electrochemical performance of the printed heterostructure cathode. This work opens new opportunities of two-dimensional heterostructures for high performance energy storage applications.