TY - JOUR
T1 - Theoretical prediction of MoN2 monolayer as a high capacity electrode material for metal ion batteries
AU - Zhang, Xiaoming
AU - Yu, Zhiming
AU - Wang, Shan Shan
AU - Guan, Shan
AU - Yang, Hui Ying
AU - Yao, Yugui
AU - Yang, Shengyuan A.
N1 - Publisher Copyright:
© 2016 The Royal Society of Chemistry.
PY - 2016
Y1 - 2016
N2 - Benefiting from the advantages of environmental friendliness, easy purification, and high thermal stability, the recently synthesized two-dimensional (2D) material MoN2 shows great potential for clean and renewable energy applications. Here, through first-principles calculations, we show that monolayered MoN2 is promising as a high capacity electrode material for metal ion batteries. Firstly, identified by phonon dispersion and exfoliation energy calculations, MoN2 monolayer is proved to be a structurally stable material that can be exfoliated from its bulk counterpart in experiments. Secondly, all the studied metal atoms (Li, Na and K) can be adsorbed on MoN2 monolayer; both the pristine and doped MoN2 are metallic. Thirdly, the metal atoms possess moderate/low migration barriers on MoN2, which ensures excellent cycling performance as battery electrodes. In addition, the calculated average voltages suggest that MoN2 monolayer is a suitable cathode for Li-ion batteries and a suitable anode for Na-ion and K-ion batteries. Most importantly, as a cathode for Li-ion batteries, MoN2 possesses a comparable average voltage but a capacity 1 to 2 times larger (432 mA h g-1) than that of standard commercial cathode materials; as an anode for Na-ion batteries, the theoretical capacity (864 mA h g-1) of MoN2 is 2 to 5 times larger than that of typical 2D anode materials, such as MoS2 and most MXenes. Finally, we also provide an estimation of the capacities of other transition-metal dinitride materials. Our work suggests that the transition-metal dinitride MoN2 is an appealing 2D electrode material with high storage capacity.
AB - Benefiting from the advantages of environmental friendliness, easy purification, and high thermal stability, the recently synthesized two-dimensional (2D) material MoN2 shows great potential for clean and renewable energy applications. Here, through first-principles calculations, we show that monolayered MoN2 is promising as a high capacity electrode material for metal ion batteries. Firstly, identified by phonon dispersion and exfoliation energy calculations, MoN2 monolayer is proved to be a structurally stable material that can be exfoliated from its bulk counterpart in experiments. Secondly, all the studied metal atoms (Li, Na and K) can be adsorbed on MoN2 monolayer; both the pristine and doped MoN2 are metallic. Thirdly, the metal atoms possess moderate/low migration barriers on MoN2, which ensures excellent cycling performance as battery electrodes. In addition, the calculated average voltages suggest that MoN2 monolayer is a suitable cathode for Li-ion batteries and a suitable anode for Na-ion and K-ion batteries. Most importantly, as a cathode for Li-ion batteries, MoN2 possesses a comparable average voltage but a capacity 1 to 2 times larger (432 mA h g-1) than that of standard commercial cathode materials; as an anode for Na-ion batteries, the theoretical capacity (864 mA h g-1) of MoN2 is 2 to 5 times larger than that of typical 2D anode materials, such as MoS2 and most MXenes. Finally, we also provide an estimation of the capacities of other transition-metal dinitride materials. Our work suggests that the transition-metal dinitride MoN2 is an appealing 2D electrode material with high storage capacity.
UR - http://www.scopus.com/inward/record.url?scp=84990226786&partnerID=8YFLogxK
U2 - 10.1039/c6ta07065e
DO - 10.1039/c6ta07065e
M3 - Article
AN - SCOPUS:84990226786
SN - 2050-7488
VL - 4
SP - 15224
EP - 15231
JO - Journal of Materials Chemistry A
JF - Journal of Materials Chemistry A
IS - 39
ER -