TY - JOUR
T1 - Understanding the Anchoring Effect of Two-Dimensional Layered Materials for Lithium-Sulfur Batteries
AU - Zhang, Qianfan
AU - Wang, Yapeng
AU - Seh, Zhi Wei
AU - Fu, Zhongheng
AU - Zhang, Ruifeng
AU - Cui, Yi
N1 - Publisher Copyright:
© 2015 American Chemical Society.
PY - 2015/6/10
Y1 - 2015/6/10
N2 - Although the rechargeable lithium-sulfur battery system has attracted significant attention due to its high theoretical specific energy, its implementation has been impeded by multiple challenges, especially the dissolution of intermediate lithium polysulfide (Li2Sn) species into the electrolyte. Introducing anchoring materials, which can induce strong binding interaction with Li2Sn species, has been demonstrated as an effective way to overcome this problem and achieve long-term cycling stability and high-rate performance. The interaction between Li2Sn species and anchoring materials should be studied at the atomic level in order to understand the mechanism behind the anchoring effect and to identify ideal anchoring materials to further improve the performance of Li-S batteries. Using first-principles approach with van der Waals interaction included, we systematically investigate the adsorption of Li2Sn species on various two-dimensional layered materials (oxides, sulfides, and chlorides) and study the detailed interaction and electronic structure, including binding strength, configuration distortion, and charge transfer. We gain insight into how van der Waals interaction and chemical binding contribute to the adsorption of Li2Sn species for anchoring materials with strong, medium, and weak interactions. We understand why the anchoring materials can avoid the detachment of Li2S as in carbon substrate, and we discover that too strong binding strength can cause decomposition of Li2Sn species. (Graph Presented).
AB - Although the rechargeable lithium-sulfur battery system has attracted significant attention due to its high theoretical specific energy, its implementation has been impeded by multiple challenges, especially the dissolution of intermediate lithium polysulfide (Li2Sn) species into the electrolyte. Introducing anchoring materials, which can induce strong binding interaction with Li2Sn species, has been demonstrated as an effective way to overcome this problem and achieve long-term cycling stability and high-rate performance. The interaction between Li2Sn species and anchoring materials should be studied at the atomic level in order to understand the mechanism behind the anchoring effect and to identify ideal anchoring materials to further improve the performance of Li-S batteries. Using first-principles approach with van der Waals interaction included, we systematically investigate the adsorption of Li2Sn species on various two-dimensional layered materials (oxides, sulfides, and chlorides) and study the detailed interaction and electronic structure, including binding strength, configuration distortion, and charge transfer. We gain insight into how van der Waals interaction and chemical binding contribute to the adsorption of Li2Sn species for anchoring materials with strong, medium, and weak interactions. We understand why the anchoring materials can avoid the detachment of Li2S as in carbon substrate, and we discover that too strong binding strength can cause decomposition of Li2Sn species. (Graph Presented).
KW - LiS species
KW - anchoring material
KW - first-principles simulation
KW - lithium-sulfur battery
KW - two-dimensional layered materials
UR - https://www.scopus.com/pages/publications/84935856423
U2 - 10.1021/acs.nanolett.5b00367
DO - 10.1021/acs.nanolett.5b00367
M3 - 文章
AN - SCOPUS:84935856423
SN - 1530-6984
VL - 15
SP - 3780
EP - 3786
JO - Nano Letters
JF - Nano Letters
IS - 6
ER -