Wen, Z., Li, Y., Zhao, Z., Qu, W., Chen, N., Xing, Y., Ma, Y., Li, L., Wu, F., & Chen, R. (2020). A leaf-like Al2O3-based quasi-solid electrolyte with a fast Li+ conductive interface for stable lithium metal anodes. Journal of Materials Chemistry A, 8(15), 7280-7287. https://doi.org/10.1039/d0ta02098b
Wen, Ziyue ; Li, Yuejiao ; Zhao, Zhikun et al. / A leaf-like Al2O3-based quasi-solid electrolyte with a fast Li+ conductive interface for stable lithium metal anodes. In: Journal of Materials Chemistry A. 2020 ; Vol. 8, No. 15. pp. 7280-7287.
@article{5a89a9e3bade48c3ae21066170492803,
title = "A leaf-like Al2O3-based quasi-solid electrolyte with a fast Li+ conductive interface for stable lithium metal anodes",
abstract = "Poor interfacial contact and Li dendritic growth severely restrict practical applications of Li metal anodes. Herein, we report a novel biomimetic solid-state electrolyte based on injection of 1 M LiTFSI-Py13TFSI ionic liquid electrolyte into a leaf-like Al2O3 skeleton through an in situ sol-gel method. This structure is intended to address the poor contact at the interface and protect the Li metal anode. A large amount of ionic liquid electrolyte was absorbed by the leaf-like Al2O3 skeleton owing to its high specific surface area. This system improved the ionic conductivity and promoted migration of Li+ both in the bulk and at the interface. The lithiophilic Al2O3 skeleton was in close contact with metallic Li and formed a fast Li+ conductive layer (Li-Al-O composition), which facilitated uniform deposition of Li and thus inhibited Li dendrite formation during long-term cycling. Moreover, density functional theory calculations indicated spontaneous generation of a Li-Al-O layer and [Py13]+ in the ionic liquid facilitates this process. Symmetric Li cells assembled with this electrolyte exhibited an extremely long cycle lifetime of 1100 h at a high constant current density. This strategy of a biomimetic leaf-structured electrolyte with a Li-Al-O conductive layer at the interface addresses problems of solid-state Li metal batteries and provides an alternative system for practical applications.",
author = "Ziyue Wen and Yuejiao Li and Zhikun Zhao and Wenjie Qu and Nan Chen and Yi Xing and Yue Ma and Li Li and Feng Wu and Renjie Chen",
note = "Publisher Copyright: {\textcopyright} 2020 The Royal Society of Chemistry.",
year = "2020",
month = apr,
day = "21",
doi = "10.1039/d0ta02098b",
language = "English",
volume = "8",
pages = "7280--7287",
journal = "Journal of Materials Chemistry A",
issn = "2050-7488",
publisher = "Royal Society of Chemistry",
number = "15",
}
Wen, Z, Li, Y, Zhao, Z, Qu, W, Chen, N, Xing, Y, Ma, Y, Li, L, Wu, F & Chen, R 2020, 'A leaf-like Al2O3-based quasi-solid electrolyte with a fast Li+ conductive interface for stable lithium metal anodes', Journal of Materials Chemistry A, vol. 8, no. 15, pp. 7280-7287. https://doi.org/10.1039/d0ta02098b
A leaf-like Al2O3-based quasi-solid electrolyte with a fast Li+ conductive interface for stable lithium metal anodes. / Wen, Ziyue
; Li, Yuejiao; Zhao, Zhikun et al.
In:
Journal of Materials Chemistry A, Vol. 8, No. 15, 21.04.2020, p. 7280-7287.
Research output: Contribution to journal › Article › peer-review
TY - JOUR
T1 - A leaf-like Al2O3-based quasi-solid electrolyte with a fast Li+ conductive interface for stable lithium metal anodes
AU - Wen, Ziyue
AU - Li, Yuejiao
AU - Zhao, Zhikun
AU - Qu, Wenjie
AU - Chen, Nan
AU - Xing, Yi
AU - Ma, Yue
AU - Li, Li
AU - Wu, Feng
AU - Chen, Renjie
N1 - Publisher Copyright:
© 2020 The Royal Society of Chemistry.
PY - 2020/4/21
Y1 - 2020/4/21
N2 - Poor interfacial contact and Li dendritic growth severely restrict practical applications of Li metal anodes. Herein, we report a novel biomimetic solid-state electrolyte based on injection of 1 M LiTFSI-Py13TFSI ionic liquid electrolyte into a leaf-like Al2O3 skeleton through an in situ sol-gel method. This structure is intended to address the poor contact at the interface and protect the Li metal anode. A large amount of ionic liquid electrolyte was absorbed by the leaf-like Al2O3 skeleton owing to its high specific surface area. This system improved the ionic conductivity and promoted migration of Li+ both in the bulk and at the interface. The lithiophilic Al2O3 skeleton was in close contact with metallic Li and formed a fast Li+ conductive layer (Li-Al-O composition), which facilitated uniform deposition of Li and thus inhibited Li dendrite formation during long-term cycling. Moreover, density functional theory calculations indicated spontaneous generation of a Li-Al-O layer and [Py13]+ in the ionic liquid facilitates this process. Symmetric Li cells assembled with this electrolyte exhibited an extremely long cycle lifetime of 1100 h at a high constant current density. This strategy of a biomimetic leaf-structured electrolyte with a Li-Al-O conductive layer at the interface addresses problems of solid-state Li metal batteries and provides an alternative system for practical applications.
AB - Poor interfacial contact and Li dendritic growth severely restrict practical applications of Li metal anodes. Herein, we report a novel biomimetic solid-state electrolyte based on injection of 1 M LiTFSI-Py13TFSI ionic liquid electrolyte into a leaf-like Al2O3 skeleton through an in situ sol-gel method. This structure is intended to address the poor contact at the interface and protect the Li metal anode. A large amount of ionic liquid electrolyte was absorbed by the leaf-like Al2O3 skeleton owing to its high specific surface area. This system improved the ionic conductivity and promoted migration of Li+ both in the bulk and at the interface. The lithiophilic Al2O3 skeleton was in close contact with metallic Li and formed a fast Li+ conductive layer (Li-Al-O composition), which facilitated uniform deposition of Li and thus inhibited Li dendrite formation during long-term cycling. Moreover, density functional theory calculations indicated spontaneous generation of a Li-Al-O layer and [Py13]+ in the ionic liquid facilitates this process. Symmetric Li cells assembled with this electrolyte exhibited an extremely long cycle lifetime of 1100 h at a high constant current density. This strategy of a biomimetic leaf-structured electrolyte with a Li-Al-O conductive layer at the interface addresses problems of solid-state Li metal batteries and provides an alternative system for practical applications.
UR - http://www.scopus.com/inward/record.url?scp=85083371562&partnerID=8YFLogxK
U2 - 10.1039/d0ta02098b
DO - 10.1039/d0ta02098b
M3 - Article
AN - SCOPUS:85083371562
SN - 2050-7488
VL - 8
SP - 7280
EP - 7287
JO - Journal of Materials Chemistry A
JF - Journal of Materials Chemistry A
IS - 15
ER -
Wen Z, Li Y, Zhao Z, Qu W, Chen N, Xing Y et al. A leaf-like Al2O3-based quasi-solid electrolyte with a fast Li+ conductive interface for stable lithium metal anodes. Journal of Materials Chemistry A. 2020 Apr 21;8(15):7280-7287. doi: 10.1039/d0ta02098b