阴极
纳米颗粒
锂(药物)
材料科学
电池(电)
金属间化合物
拉曼光谱
化学工程
锂电池
无机化学
纳米技术
化学
复合材料
物理化学
离子
有机化学
离子键合
功率(物理)
内分泌学
工程类
物理
光学
医学
量子力学
合金
作者
Samuel Plunkett,Alireza Kondori,Duck Young Chung,Jianguo Wen,Mark Wolfman,Saul H. Lapidus,Yang Ren,Rachid Amine,Khalil Amine,Anil U. Mane,Mohammad Asadi,Said Al‐Hallaj,Brian P. Chaplin,Kah Chun Lau,Hsien‐Hau Wang,Larry A. Curtiss
出处
期刊:ACS energy letters
[American Chemical Society]
日期:2022-07-19
卷期号:7 (8): 2619-2626
被引量:35
标识
DOI:10.1021/acsenergylett.2c01191
摘要
Li–O2 batteries suffer from large charge overpotentials due to the high charge transfer resistance of Li2O2 discharge products. A potential solution to this problem is the development of LiO2-based batteries that possess low charge overpotentials due to the lower charge transfer resistance of LiO2. In this report, IrLi nanoparticles were synthesized and implemented for the first time as a LiO2 battery cathode material. The IrLi nanoparticle synthesis was achieved by a temperature- and time-optimized thermal reaction between a precise ratio of iridium nanoparticles and lithium metal. Li–O2 batteries employing the IrLi-rGO cathodes were cycled up to 100 cycles at moderate current densities with sustained low cell charge potentials (<3.5 V). Various characterization techniques, including SEM, DEMS, TEM, Raman, and titration, were used to demonstrate the LiO2 discharge product and the absence of Li2O2. On the basis of first-principles calculations, it was concluded that the formation of crystalline LiO2 can be stabilized by epitaxial growth on the (111) facets of IrLi nanoparticles present on the cathode surface. These findings demonstrate that, in addition to the previously studied Ir3Li intermetallic, the IrLi intermetallic also provides a means by which LiO2 discharge products can be stabilized and confirms the importance of templating for the formation process.
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