arrow
Return

Conductive Porous Solid Framework Mechanically Stabilized Si Anode

delete2024-11-26
delete0
PRE
AI
G
Gu, Run
S
Shiji Shen
李新然 cover
李新然 (Xinran Li)
W
Wenyi Xiang
K
Kong, Xiangkun
J
Ji‐Xiang Hu
X
Xiaoye Liu
Z
Zongzi Jin
L
Li Cui
X
Xu Ma
鲍垠桦 cover
鲍垠桦 (Yinhua Bao) *
C
Chengwei Wang *
DOI:10.1002/smll.202408457delete
deleteOriginal
deleteOriginal request for help
deleteShare
deleteSave
Abstract

Abstract

En 中文
Micron-sized Si anodes garner renewed attention due to their advantages of low cost, small specific surface area, and high energy density. However, micron-sized Si anodes undergo significant volume changes during lithiation/delithiation, leading to particle cracking and pulverization. This study employs the tape casting method and ultrafast high-temperature sintering technology to construct a porous sheet, within which a solid framework constrains the Si particles. In rate performance tests, when the current density rises to 1 A g-1, the micron-sized Si in the porous sheet demonstrates a delithiation capacity of 2145 mAh g-1, compared to 113 mAh g-1 for the pristine Si, showing efficient ion and electron conductive pathways in the framework. When cycled at 0.3 A g-1, the delithiation capacity of the ball-milled micron-sized Si in the porous sheet is 1496 mAh g-1 after 100 cycles, in contrast to 95 mAh g-1 for the pristine Si. The enhanced cycling stability of Si in the porous sheet results from the strong mechanical constraint imposed by the solid framework, which suppresses volume changes, inhibits particle cracking, and reduces solid electrolyte interphase growth. This strategy of constructing porous sheets and utilizing solid-solid bonding to constrain Si particles represents a novel approach for Si anode modification.
Keywords:
conductive porous framework
cycling stability
micron-sized si
solid-solid constraint

Journal

Small cover
Small
IF:
12.1
Papers:
3.0W
Citations:
16.4W

Organization

C
chinese academy of sciences
Scholars:
55.9W
Papers: 44.7W
Citations: 704