Khossossi Nabil, Banerjee Amitava, Benhouria Younes, Essaoudi Ismail, Ainane Abdelmajid, Ahuja Rajeev
Laboratoire de Physique des Matèriaux et Modélisations des Systèmes, (LP2MS), Unité Associée au CNRST-URAC 08, Moulay Ismail University, Faculty of Sciences, Department of Physics, B.P. 11201, Meknes, Morocco.
Phys Chem Chem Phys. 2019 Aug 21;21(33):18328-18337. doi: 10.1039/c9cp03242h.
The selection of a suitable two dimensional anode material is one of the key steps in the development of alkali metal ion batteries to achieve superior performance with an ultrahigh rate of charging/discharging capability. Here, we have used state of the art density functional theory (DFT) to explore the feasibility of two dimensional (2D) honeycomb boron arsenide (h-BAs) as a potential anode for alkali-metal (Li/Na/K)-ion batteries. The structural and dynamic stability has been confirmed from the formation energy and the non-negative phonon frequency. The h-BAs monolayer exhibits negative adsorption-energy values of -0.422, -0.321 and -0.814 eV, for the Li, Na, and K-ions, respectively. Subsequently, during the charging process the adsorption-energy increases considerably without an energy-barrier when any of the A-atoms achieve a crucial distance (∼8 Å). In addition, it has been observed that insertion of the mono alkali metal atom into the h-BAs surface results in the semi-conducting nature of the monolayer being transformed into a metallic-state. The low energy barriers for Li (0.522 eV), Na (0.248), and K (0.204 eV) active ion migration imply high diffusion over the h-BAs surface, hence suggesting it has a high charge/discharge capability. Moreover, we have obtained low average operating voltages of 0.49 V (Li), 0.35 V (Na) and 0.26 V (K) and high theoretical capacities of 522.08 mA h g-1 (for Li and Na) and 209.46 mA h g-1 (for K) in this study. The aforementioned findings indicate that a h-BAs monolayer could be a promising anode material in the search for low cost and high performance alkali metal ion batteries.
选择合适的二维阳极材料是开发碱金属离子电池的关键步骤之一,目的是实现具有超高充电/放电能力的卓越性能。在此,我们利用最先进的密度泛函理论(DFT)来探索二维蜂窝状砷化硼(h-BAs)作为碱金属(Li/Na/K)离子电池潜在阳极的可行性。从形成能和非负声子频率证实了其结构和动态稳定性。h-BAs单层对于Li、Na和K离子的吸附能值分别为-0.422、-0.321和-0.814 eV。随后,在充电过程中,当任何一个A原子达到关键距离(约8 Å)时,吸附能会大幅增加且没有能垒。此外,已观察到单碱金属原子插入h-BAs表面会导致单层的半导体性质转变为金属态。Li(0.522 eV)、Na(0.248)和K(0.204 eV)活性离子迁移的低能垒意味着在h-BAs表面具有高扩散率,因此表明它具有高充电/放电能力。此外,在本研究中我们获得了低平均工作电压,Li为0.49 V、Na为0.35 V、K为0.26 V,以及高理论容量,Li和Na为522.08 mA h g-1,K为209.46 mA h g-1。上述发现表明,h-BAs单层在寻找低成本和高性能碱金属离子电池方面可能是一种有前景的阳极材料。