TY - JOUR
T1 - A Thin-Layer, Li+ Compensation, Moisture-Tolerant Interfacial Modification of Cu Substrate Toward the Anode-Less, Energy/Power Dense Li Metallic Batteries
AU - Wang, Helin
AU - Yuan, Yucheng
AU - Jia, Qiurong
AU - Shao, Ahu
AU - Zhang, Min
AU - Wang, Zhiqiao
AU - Cheng, Lu
AU - Tang, Xiaoyu
AU - Li, Shaowen
AU - Ma, Yue
N1 - Publisher Copyright:
© 2024 Wiley-VCH GmbH.
PY - 2024/5/29
Y1 - 2024/5/29
N2 - The unregulated metallic deposition and continuous cracking of the fragile solid electrolyte interphase are considered the critical barriers that compromise the cyclability of lithium metal batteries (LMB), especially under low N/P ratio (<3) pairing modes. Herein, an ultra-thin (5 µm), lightweight (0.25 mg cm−2), and moisture-proof interfacial layer composed of the high-entropy alloys (denoted as HEAs) and interweaved carbon nanotubes (CNTs) scaffold is constructed to modify the current collector, moreover, the thermally-induced Li22Si5 alloy blended with the hydrophobic ethylene-vinyl acetate copolymer (EVA) is infiltrated into the scaffold pores as the moisture-proof cation reservoir. The HEA@CNT/Li22Si5@EVA interfacial layer not only maximizes the Li-utilization degree with minimal voltage divergence in symmetric cells but also compensates for irreversible Li depletion in the pouch-format anode-less models. As the HEA@CNT/Li22Si5@EVA-Cu substrate paired with the LiNi0.8Mn0.1Co0.1O2 cathode in a 200 mAh prototype, the phase evolution of oxide cathode and efficient Li utilization at the anode substrate can be real-time monitored by the transmission-mode operando X-ray diffraction. This interfacial layer strategy affords multifunctionality to enable the LMB prototyping without excessive Li abuse. Consequently, cycling endurance and the balanced energy densities (420.1 Wh kg−1) are obtained on the whole cell.
AB - The unregulated metallic deposition and continuous cracking of the fragile solid electrolyte interphase are considered the critical barriers that compromise the cyclability of lithium metal batteries (LMB), especially under low N/P ratio (<3) pairing modes. Herein, an ultra-thin (5 µm), lightweight (0.25 mg cm−2), and moisture-proof interfacial layer composed of the high-entropy alloys (denoted as HEAs) and interweaved carbon nanotubes (CNTs) scaffold is constructed to modify the current collector, moreover, the thermally-induced Li22Si5 alloy blended with the hydrophobic ethylene-vinyl acetate copolymer (EVA) is infiltrated into the scaffold pores as the moisture-proof cation reservoir. The HEA@CNT/Li22Si5@EVA interfacial layer not only maximizes the Li-utilization degree with minimal voltage divergence in symmetric cells but also compensates for irreversible Li depletion in the pouch-format anode-less models. As the HEA@CNT/Li22Si5@EVA-Cu substrate paired with the LiNi0.8Mn0.1Co0.1O2 cathode in a 200 mAh prototype, the phase evolution of oxide cathode and efficient Li utilization at the anode substrate can be real-time monitored by the transmission-mode operando X-ray diffraction. This interfacial layer strategy affords multifunctionality to enable the LMB prototyping without excessive Li abuse. Consequently, cycling endurance and the balanced energy densities (420.1 Wh kg−1) are obtained on the whole cell.
KW - high energy density
KW - Li supplementary
KW - moisture tolerance
KW - thin-layer modification
KW - transmission-mode operando XRD
UR - http://www.scopus.com/inward/record.url?scp=85184398854&partnerID=8YFLogxK
U2 - 10.1002/adfm.202314186
DO - 10.1002/adfm.202314186
M3 - 文章
AN - SCOPUS:85184398854
SN - 1616-301X
VL - 34
JO - Advanced Functional Materials
JF - Advanced Functional Materials
IS - 22
M1 - 2314186
ER -