TY - JOUR
T1 - Unveiling the Stress-Buffering Mechanism of Deep Lithiated Ag Nanowires
T2 - A Polymer Segmental Motion Strategy toward Ultra-Robust Li Metal Anodes
AU - Li, Shaowen
AU - Zhao, Ting
AU - Wang, Ke
AU - Sun, Changchun
AU - Jia, Wenqi
AU - Zhang, Min
AU - Wang, Helin
AU - Shao, Ahu
AU - Ma, Yue
N1 - Publisher Copyright:
© 2022 Wiley-VCH GmbH.
PY - 2022/7/25
Y1 - 2022/7/25
N2 - The severe volume expansion and uncontrolled mechanical stress restrict the high-areal-capacity Li storage in the alloy-type or metallic anodes. Hitherto, most of the mitigation coating strategies are still based on the “trial-and-error” attempts, without the quantitative elucidation of the stress-relaxation mechanism. This article herein constructs a prototypical coating model based on the Si-O bonding, with the virtual and experimental screening of various structural parameters (for instance, the thickness, elasticity and cross-linking density), for the deep lithiation of the Ag nanowires (AgNWs) framework. The operando X-ray diffraction analysis and density functional theory calculations show that γ2(Li10Ag3) exhibits the highest Li affinity to induce the piled-up deposits till 10 mA h cm–2; while the molecular dynamics simulations depict the optimal stress-buffering pattern of the segmental motion in polydimethylsiloxane (PDMS) coating layer. As pairing the integrated anode of the AgNWs@PDMS slurries that casted on the AlOx modified polyethylene separator with the NMC-811 cathode (12.5 mg cm–2), the constructed single-layer pouch cell can balance the robust cyclability even at the mechanical deformations. This study demonstrates a tentative inverse design strategy to realize the stress-buffering purpose upon the priori defining of the structural properties.
AB - The severe volume expansion and uncontrolled mechanical stress restrict the high-areal-capacity Li storage in the alloy-type or metallic anodes. Hitherto, most of the mitigation coating strategies are still based on the “trial-and-error” attempts, without the quantitative elucidation of the stress-relaxation mechanism. This article herein constructs a prototypical coating model based on the Si-O bonding, with the virtual and experimental screening of various structural parameters (for instance, the thickness, elasticity and cross-linking density), for the deep lithiation of the Ag nanowires (AgNWs) framework. The operando X-ray diffraction analysis and density functional theory calculations show that γ2(Li10Ag3) exhibits the highest Li affinity to induce the piled-up deposits till 10 mA h cm–2; while the molecular dynamics simulations depict the optimal stress-buffering pattern of the segmental motion in polydimethylsiloxane (PDMS) coating layer. As pairing the integrated anode of the AgNWs@PDMS slurries that casted on the AlOx modified polyethylene separator with the NMC-811 cathode (12.5 mg cm–2), the constructed single-layer pouch cell can balance the robust cyclability even at the mechanical deformations. This study demonstrates a tentative inverse design strategy to realize the stress-buffering purpose upon the priori defining of the structural properties.
KW - dynamic phasic changes
KW - flexible metallic batteries
KW - lithiophilic alloys
KW - plastic-metal bonding
KW - stress relaxation
KW - stress-buffering mechanisms
UR - http://www.scopus.com/inward/record.url?scp=85129773726&partnerID=8YFLogxK
U2 - 10.1002/adfm.202203010
DO - 10.1002/adfm.202203010
M3 - 文章
AN - SCOPUS:85129773726
SN - 1616-301X
VL - 32
JO - Advanced Functional Materials
JF - Advanced Functional Materials
IS - 30
M1 - 2203010
ER -