2015
DOI: 10.1021/acsami.5b06847
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2D Electrides as Promising Anode Materials for Na-Ion Batteries from First-Principles Study

Abstract: Searching for suitable anodes with good performance is a key challenge for rechargeable Na-ion batteries (NIBs). Using the first-principles method, we predict that 2D nitrogen electride materials can be served as anode materials for NIBs. Particularly, we show that Ca2N meets almost all the requirements of a good NIB anode. Each formula unit of a monolayer Ca2N sheet can absorb up to four Na atoms, corresponding to a theoretical specific capacity of 1138 mAh·g(-1). The metallic character for both pristine Ca2N… Show more

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Cited by 205 publications
(220 citation statements)
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“…For Na atoms, the formation energy increased with the increase in x , and a negative enough formation energy of −0.23 eV persisted at x= 2. These values are much larger than those for other typical electrode materials, such as the formation energy of Li on Nb 2 C (−0.02 eV atom −1 ) and Mo 2 C (−0.01 eV atom −1 ), and also Na on Ca 2 N (−0.003 eV atom −1 ) and GeS (−0.02 eV atom −1 ) . Therefore, these values practically ensure the good stability of Li 2 Sc 2 C and Na 2 Sc 2 C. Here, x= 2 means that there is one Li/Na adlayer on each side of the Sc 2 C layer, and the chemical stoichiometry for the fully adsorbed systems can be written as Li 2 Sc 2 C and Na 2 Sc 2 C. Given that multilayer adsorption means high storage capacity, we next explored the average adsorption energy as the Li/Na atom number was increased.…”
Section: Resultsmentioning
confidence: 95%
See 1 more Smart Citation
“…For Na atoms, the formation energy increased with the increase in x , and a negative enough formation energy of −0.23 eV persisted at x= 2. These values are much larger than those for other typical electrode materials, such as the formation energy of Li on Nb 2 C (−0.02 eV atom −1 ) and Mo 2 C (−0.01 eV atom −1 ), and also Na on Ca 2 N (−0.003 eV atom −1 ) and GeS (−0.02 eV atom −1 ) . Therefore, these values practically ensure the good stability of Li 2 Sc 2 C and Na 2 Sc 2 C. Here, x= 2 means that there is one Li/Na adlayer on each side of the Sc 2 C layer, and the chemical stoichiometry for the fully adsorbed systems can be written as Li 2 Sc 2 C and Na 2 Sc 2 C. Given that multilayer adsorption means high storage capacity, we next explored the average adsorption energy as the Li/Na atom number was increased.…”
Section: Resultsmentioning
confidence: 95%
“…We assumed that the charge–discharge processes follow the common half‐cell reaction in aqueous solution [Eqns. ] truenormalSnormalc2normalC+xLi++xnormale-normalLnormalixnormalSnormalc2normalC truenormalSnormalc2normalC+xNa++xnormale-normalNnormalaxnormalSnormalc2normalC …”
Section: Resultsmentioning
confidence: 99%
“…For a 2D structural material, a larger interlayer distance means smaller volume changes and a lower intercalation barrier . Inspired by the facts that the interlayer spacing of Ti 3 C 2 T x can be artificially tuned and that its surface can be modified, researchers have made numerous efforts in using Ti 3 C 2 T x and Ti 3 C 2 T x ‐based composites for LIBs, SIBs, LSBs, and other kinds of batteries . Chemical modification, structural design, and combination with other materials are the three most popular strategies to improve the performance of rechargeable batteries.…”
Section: Potential Applicationsmentioning
confidence: 99%
“…[186,191,192] Inspired by the facts that the interlayer spacing of Ti 3 C 2 T x can be artificially tuned and that its surface can be modified, researchers have made numerous efforts in using Ti 3 C 2 T x and Ti 3 C 2 T x -based composites for LIBs, SIBs, LSBs, and other kinds of batteries. [74,137,138,193,194] Chemical modification, structural design, and combination with other materials are the three most popular strategies to improve the performance of rechargeable batteries. In this Review, we mainly discuss the applications of Ti 3 C 2 T x in LIBs, SIBs, and LSBs.…”
Section: Ti 3 C 2 T X For Rechargeable Batteriesmentioning
confidence: 99%
“…The special physical properties all bring a great application prospect and have attracted extensive attention. The high specific capacity and suitable migration energy barrier suggest that 2D electride is a promising anode material for sodium ion batteries [26][27][28]. In addition, utilizing the powerful predictive ability of the first-principles calculations, many works [29][30][31][32] suggest abundant compounds to be 2D electride.…”
Section: Introductionmentioning
confidence: 99%