scholarly journals First Principles Insights into Amorphous Mg2Sn Alloy Anode for Mg-ion Batteries

2018 ◽  
Author(s):  
Majid Mortazavi ◽  
Edmund Soon ◽  
Nikhil V. Medhekar

<p>Rechargeable Mg-ion batteries (MIBs) are an advantageous alternative solution to Li-ion batteries in many ways. Mg is safer and abundant in the Earth, and has a high electrochemical capacity owing to its divalent nature. It is yet relatively less studied largely due to primal success of Li-base batteries and challenges associated with the design of MIBs including high performance electrode materials. Herein, using first principles calculation, we study the electrochemical and mechanical properties of the most viable alloy anode Mg<sub>2</sub>Sn with special attention to its amorphous phase—unavoidable phase forming during cyclic Sn magnesiation in MIBs due to volume changes. We create amorphous Mg<sub>2</sub>Sn via simulated annealing technique using <i>ab initio</i> molecular dynamics. We find while Mg<sub>2</sub>Sn undergoes a substantial atomic-level structural changes during the crystal-to-amorphous transformation, its polycrystalline properties degrade slightly and become softer by only 20 % compared to the crystal phase. Moreover, we predict competitive electrochemical properties for the amorphous phase assuming it goes under similar reaction path as the average electronic charge on Mg ions almost remain unaffected. This work thus not only demonstrate that a-Mg<sub>2</sub>Sn phase could be a bypass to combat the challenges associated with the crystal cracking during volume change, but also serves as first step to better understand the widely used Mg<sub>2</sub>Sn alloy anode in MIBs.</p>

2018 ◽  
Author(s):  
Majid Mortazavi ◽  
Edmund Soon ◽  
Nikhil V. Medhekar

<p>Rechargeable Mg-ion batteries (MIBs) are an advantageous alternative solution to Li-ion batteries in many ways. Mg is safer and abundant in the Earth, and has a high electrochemical capacity owing to its divalent nature. It is yet relatively less studied largely due to primal success of Li-base batteries and challenges associated with the design of MIBs including high performance electrode materials. Herein, using first principles calculation, we study the electrochemical and mechanical properties of the most viable alloy anode Mg<sub>2</sub>Sn with special attention to its amorphous phase—unavoidable phase forming during cyclic Sn magnesiation in MIBs due to volume changes. We create amorphous Mg<sub>2</sub>Sn via simulated annealing technique using <i>ab initio</i> molecular dynamics. We find while Mg<sub>2</sub>Sn undergoes a substantial atomic-level structural changes during the crystal-to-amorphous transformation, its polycrystalline properties degrade slightly and become softer by only 20 % compared to the crystal phase. Moreover, we predict competitive electrochemical properties for the amorphous phase assuming it goes under similar reaction path as the average electronic charge on Mg ions almost remain unaffected. This work thus not only demonstrate that a-Mg<sub>2</sub>Sn phase could be a bypass to combat the challenges associated with the crystal cracking during volume change, but also serves as first step to better understand the widely used Mg<sub>2</sub>Sn alloy anode in MIBs.</p>


Author(s):  
Xiaomei Li ◽  
Yinhua Liu ◽  
Wenyun Liu ◽  
Chao Wang ◽  
Xi Xu ◽  
...  

Experimental studies integrated with first-principles calculation revealed that the Mo-doping strategy allows the traditional Ba0.5Sr0.5Co0.8Fe0.2O3-δ (BSCF) perovskite cathode to show improved hydration ability and proton migration ability, leading to a...


2017 ◽  
Vol 19 (38) ◽  
pp. 26322-26329 ◽  
Author(s):  
Haoyue Guo ◽  
Yiman Zhang ◽  
Amy C. Marschilok ◽  
Kenneth J. Takeuchi ◽  
Esther S. Takeuchi ◽  
...  

The interplay among Li, O2−, Fe3+ and Zn2+ enables the high performance of ZnFe2O4 as Lithium ion battery materials.


2013 ◽  
Vol 815 ◽  
pp. 73-79
Author(s):  
Jin Zhang ◽  
Pei Xian Zhu ◽  
Sheng Gang Zhou ◽  
Jia Xin Guo

Our team proposes the design concept of layered composite electrode materials. Change the single substrate of traditional electrode material by using thermal pressing diffusion welding to synthesize sandwich structure electrode substrate of titanium cladding aluminum. Only Al3Ti phase is obtained in the composite interface. First-principles calculations have been used to calculate the formation enthalpy and binding energies, and the respective order of their value are as follows: AlTi3<AlTi<Al2Ti<Al3Ti,AlTi3<AlTi<Al2Ti<Al3Ti. AlTi3 near Fermi surface is zero and it has good conductivity. It has the strongest bonding capability and stability. Practical application of this new anode in the field of hydrometallurgy has good conductivity, strong adaptability.


2021 ◽  
Vol 9 ◽  
Author(s):  
Junbo Zhang ◽  
Xiaodong Lu ◽  
Jingjing Zhang ◽  
Han Li ◽  
Bowen Huang ◽  
...  

Layered structure (MoS2) has the potential use as an anode in metal-ions (M-ions) batteries. Here, first-principles calculations are used to systematically investigate the diffusion mechanisms and structural changes of MoS2 as anode in lithium (Li)-, sodium (Na)-, magnesium (Mg)- and Zinc (Zn)-ions batteries. Li and Na ions are shown to be stored in the MoS2 anode material due to the strong adsorption energies (~−2.25 eV), in contrast to a relatively weak adsorption of Mg and Zn ions for the pristine MoS2. To rationalize the results, we evaluate the charge transfer from the M-ions to the MoS2 anode, and find a significant hybridization between the adsorbed atoms and S atoms in the MoS2 anode. Furthermore, the migration energy barriers of M ions are explored using first-principles with the climbing image nudged elastic band (CINEB) method, and the migration energy barrier is in the order of Zn &gt; Mg &gt; Li &gt; Na ions. Our results combined with the electrochemical performance experiments show that Li- and Na-ions batteries have good cycle and rate performance due to low ions migration energy barrier and high storage capability. However, the MoS2 anode shows poor electrochemical performance in Zn- and Mg-ions batteries, especially Zn-ion batteries. Further analysis reveals that the MoS2 structure undergoes the phase transformation from 2H to 1T during the intercalation of Li and Na ions, leading to strong interaction between M ions and the anode, and thus higher electrochemical performance, which, however, is difficult to occur in Mg- and Zn-ions batteries. This work focuses on the theoretical aspects of M-ions intercalation, and our findings may stimulate the experimental work for the intercalation of multi-ions to maximize the capacity of anode in M-ions batteries.


2020 ◽  
Vol 29 (1) ◽  
pp. 016802 ◽  
Author(s):  
Li-Na Bai ◽  
Ling-Ying Kong ◽  
Jing Wen ◽  
Ning Ma ◽  
Hong Gao ◽  
...  

Materials ◽  
2021 ◽  
Vol 15 (1) ◽  
pp. 103
Author(s):  
Xue Si ◽  
Weihan She ◽  
Qiang Xu ◽  
Guangmin Yang ◽  
Zhuo Li ◽  
...  

Germanene, with a wrinkled atomic layer structure and high specific surface area, showed high potential as an electrode material for supercapacitors. According to the first-principles calculation based on Density Functional Theory, the quantum capacitance of germanene could be significantly improved by introducing doping/co-doping, vacancy defects and multilayered structures. The quantum capacitance obtained enhancement as a result of the generation of localized states near the Dirac point and/or the movement of the Fermi level induced by doping and/or defects. In addition, it was found that the quantum capacitance enhanced monotonically with the increase of the defect concentration.


RSC Advances ◽  
2017 ◽  
Vol 7 (49) ◽  
pp. 30559-30563
Author(s):  
Ningbo Liao ◽  
Beirong Zheng ◽  
Miao Zhang ◽  
Wei Xue

Amorphous silicon oxycarbide is considered as a promising anode material for new generation of lithium-ion batteries, and figuring out the lithiation mechanism is crucial for its application.


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