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新型锂化高熵尖晶石型卤氧化物的制备及其在锂离子电池中的电化学性能

Preparation of novel lithiated high-entropy spinel-type oxyhalides and their electrochemical performance in Li-ion batteries.

作者信息

Porodko Olena, Kavan Ladislav, Fabián Martin, Pitňa Lásková Barbora, Šepelák Vladimír, Kolev Hristo, da Silva Klebson Lucenildo, Lisnichuk Maksym, Zukalová Markéta

机构信息

Institute of Geotechnics, Slovak Academy of Sciences, Watsonova 45, 040 01, Košice, Slovak Republic.

J. Heyrovský Institute of Physical Chemistry, Czech Acad. Sci., Dolejškova 3, CZ-18200, Prague 8, Czech Republic.

出版信息

Nanoscale. 2025 Feb 13;17(7):3739-3751. doi: 10.1039/d4nr03918a.

Abstract

Compositionally complex doping of spinel oxides toward high-entropy oxides is expected to enhance their electrochemical performance substantially. We successfully prepared high-entropy compounds, the oxide (ZnMgCoCu)FeO (HEOFe), lithiated oxyfluoride Li(ZnMgCoCu)FeOF (LiHEOFeF), and lithiated oxychloride Li(ZnMgCoCu)FeOCl (LiHEOFeCl) with a spinel-based cubic structure by ball milling and subsequent heat treatment. The products exhibit particles with sizes from 50 to 200 nm with a homogeneous atomic distribution. The average elemental composition of the samples is close to the nominal value. Fe Mössbauer spectroscopy revealed that incorporating Li and F or Cl and forming oxygen defects do not influence the redistribution of Fe cations over the spinel lattice sites and result in their preferred octahedral coordination. Electrochemical measurements carried out using 2032-coin cells with a Li-metal anode have shown voltammetric charge capacities of 450, 694, and 593 mA h g for HEOFe, LiHEOFeCl, and LiHEOFeF, respectively. The best electrochemical performance of LiHEOFeCl was ascribed to its smallest particle size. Galvanostatic chronopotentiometry at 1C rate confirmed high initial charge capacities for all the samples but galvanostatic curves exhibited capacity decay over 100 charging/discharging cycles. Raman spectroelectrochemical analysis conducted on the LiHEOFeF sample proved the reversibility of the electrochemical process for initial charging/discharging cycles. Electrochemical impedance spectroscopy revealed the lowest initial charge transfer resistance for LiHEOFeCl and its gradual decrease both for LiHEOFeCl and LiHEOFeF during galvanostatic cycling, whereas the charge transfer resistance of HEOFe slightly increases over 100 galvanostatic cycles due to the different mechanism of the electrochemical reduction.

摘要

将尖晶石氧化物进行成分复杂的掺杂以制备高熵氧化物有望显著提高其电化学性能。我们通过球磨和后续热处理成功制备了具有尖晶石基立方结构的高熵化合物,即氧化物(ZnMgCoCu)FeO(HEOFe)、锂化氧氟化物Li(ZnMgCoCu)FeOF(LiHEOFeF)和锂化氧氯化物Li(ZnMgCoCu)FeOCl(LiHEOFeCl)。产物呈现出尺寸为50至200nm且原子分布均匀的颗粒。样品的平均元素组成接近标称值。Fe穆斯堡尔光谱表明,掺入Li和F或Cl并形成氧缺陷不会影响Fe阳离子在尖晶石晶格位点上的重新分布,并且导致它们优先形成八面体配位。使用带有锂金属阳极的2032型硬币电池进行的电化学测量表明,HEOFe、LiHEOFeCl和LiHEOFeF的伏安充电容量分别为450、694和593 mA h g。LiHEOFeCl最佳的电化学性能归因于其最小的粒径。在1C倍率下的恒电流计时电位法证实了所有样品都具有较高的初始充电容量,但恒电流曲线显示在100次充放电循环后容量衰减。对LiHEOFeF样品进行的拉曼光谱电化学分析证明了初始充放电循环中电化学过程的可逆性。电化学阻抗谱显示LiHEOFeCl的初始电荷转移电阻最低,并且在恒电流循环过程中LiHEOFeCl和LiHEOFeF的电荷转移电阻都逐渐降低,而由于电化学还原的机制不同,HEOFe的电荷转移电阻在100次恒电流循环后略有增加。

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