阳极
铜
材料科学
锂(药物)
金属锂
图层(电子)
自行车
原位
集电器
金属
电流(流体)
化学工程
冶金
电极
纳米技术
化学
电气工程
电解质
工程类
医学
考古
物理化学
有机化学
历史
内分泌学
作者
Kainat Darwaish,Yi–Shiuan Wu,She‐Huang Wu,Jeng‐Kuei Chang,Rajan Jose,Chun‐Chen Yang
标识
DOI:10.1016/j.est.2024.113508
摘要
In this study, we present a facile one-step method for the thermal treatment of commercial Cu foils, leading to the growth of Cu 2 O and CuO nanoparticles in an air atmosphere, resulting in the coating of an artificial protective layer on the copper foil surface. The as-prepared CuO/Cu 2 O nanoparticles exhibit a spherical morphology, providing ample active sites to improve uniform lithium plating and cyclic stability by building a highly stable In-situ Li 2 O-rich solid-electrolyte interphase (ISEI). The artificial solid-electrolyte interphase (ASEI) protective layer contains graphene oxide (GO) as a filler with PVDF-HFP and lithium Nafion polymers, enhances Li + ion migration, which reduces volume expansion and stabilizes the interface, preventing unwanted side reactions between active lithium and electrolytes by facilitating controlled lithium deposition underneath. For integration into an anode-less full cell based on a 2032-type coin cell, alongside a lithium iron phosphate (LFP) cathode, the ISEI oxide layer was grown on a Cu foil electrode (denoted as Cu-30) via a thermal treatment at 320 °C in air for 30 min and coated ASEI (denoted as GO@Cu-30). This cell demonstrated remarkable electrochemical performance. After 250 cycles at 0.5C, it exhibited an outstanding capacity retention of 93.12 % with 99.92 % CE, significantly surpassing the performance of a bare Cu foil, which showed a capacity retention of only 9.54 % with CE of 98.77 %. This work highlights the potential of a simple thermally treated Cu foil as a current collector to overcome the Anode-less lithium metal battery (ALMB) challenges associated with high-energy-density demand. • Enhancing lithiophilicity by thermal growing CuO(II) and Cu 2 O(I) oxides on copper surface • Artificial SEI (GO-based) layer on Cu foil for structure stability and mitigates volume expansion • A stable Li 2 O-rich SEI formed, and a stable ASEI coating layer on oxide layer • Full cell exhibits excellent cyclic stability, 93% capacity retention at 0.5C over 250 cycles and 84% at 1C for 400 cycles.
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