TY - JOUR
T1 - Hollow Multihole Carbon Bowls
T2 - A Stress-Release Structure Design for High-Stability and High-Volumetric-Capacity Potassium-Ion Batteries
AU - Zhang, Zili
AU - Jia, Baorui
AU - Liu, Luan
AU - Zhao, Yongzhi
AU - Wu, Haoyang
AU - Qin, Mingli
AU - Han, Kun
AU - Wang, Wei Alex
AU - Xi, Kai
AU - Zhang, Lin
AU - Qi, Genggeng
AU - Qu, Xuanhui
AU - Kumar, Ramachandran Vasant
N1 - Publisher Copyright:
© 2019 American Chemical Society.
PY - 2019/10/22
Y1 - 2019/10/22
N2 - Potassium-ion batteries are potential alternatives to lithium-ion batteries for large-scale energy storage considering the low cost and high abundance of potassium. However, it is challenging to obtain stable electrode materials capable of undergoing long-term potassiation/depotassiation due to the high accumulated stress associated with the huge volume variation of the electrode. Here, we simulate the von Mises stress distributions of four different carbon three-dimensional models under an isotropic initial stress by the finite element method and reveal the critical role of the structure of a hollow multihole bowl on the strain-relaxation behavior. In this regard, nitrogen/oxygen codoped carbon hollow multihole bowls (CHMBs) are synthesized via hydrothermal carbonization coupled with an emulsion-templating strategy using biomass as the carbon source. Consistent with our simulation results, the CHMB anode remains stable for over 1000 cycles and delivers a high reversible capacity of 304 mAh g-1 at 0.1 A g-1. In addition to the reduced stress accumulation, the good electrochemical performances are also attributed to the surface capacitive mechanism and the shortened electron/ion transport distance in CHMBs. In particular, the CHMB composite electrode has a volumetric specific capacity 56% higher than that of hollow spheres due to the high tapped density of the bowl-shaped particles.
AB - Potassium-ion batteries are potential alternatives to lithium-ion batteries for large-scale energy storage considering the low cost and high abundance of potassium. However, it is challenging to obtain stable electrode materials capable of undergoing long-term potassiation/depotassiation due to the high accumulated stress associated with the huge volume variation of the electrode. Here, we simulate the von Mises stress distributions of four different carbon three-dimensional models under an isotropic initial stress by the finite element method and reveal the critical role of the structure of a hollow multihole bowl on the strain-relaxation behavior. In this regard, nitrogen/oxygen codoped carbon hollow multihole bowls (CHMBs) are synthesized via hydrothermal carbonization coupled with an emulsion-templating strategy using biomass as the carbon source. Consistent with our simulation results, the CHMB anode remains stable for over 1000 cycles and delivers a high reversible capacity of 304 mAh g-1 at 0.1 A g-1. In addition to the reduced stress accumulation, the good electrochemical performances are also attributed to the surface capacitive mechanism and the shortened electron/ion transport distance in CHMBs. In particular, the CHMB composite electrode has a volumetric specific capacity 56% higher than that of hollow spheres due to the high tapped density of the bowl-shaped particles.
KW - finite element simulation
KW - high cyclic stability
KW - hollow multihole carbon bowls
KW - potassium-ion batteries
KW - von Mises stress
UR - https://www.scopus.com/pages/publications/85073021068
U2 - 10.1021/acsnano.9b04728
DO - 10.1021/acsnano.9b04728
M3 - 文章
C2 - 31525956
AN - SCOPUS:85073021068
SN - 1936-0851
VL - 13
SP - 11363
EP - 11371
JO - ACS Nano
JF - ACS Nano
IS - 10
ER -