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用于(锂/钠/钾)-(铷/铯)电池的二维锗硅氧化物层状材料锚定以实现环保储能

Anchoring of 2D layered materials of GeSiO for (Li/Na/K)-(Rb/Cs) batteries towards Eco-friendly energy storage.

作者信息

Mollaamin Fatemeh

机构信息

Department of Biomedical Engineering, Faculty of Engineering and Architecture, Kastamonu University, Kastamonu, 37150, Turkey.

出版信息

BMC Chem. 2025 Aug 6;19(1):233. doi: 10.1186/s13065-025-01593-0.

Abstract

UNLABELLED

In this investigation, alkali metals including lithium (Li), sodium (Na), potassium (K), rubidium (Rb) and cesium (Cs) have been served as hybrid materials for batteries cells. A vast study on H-capture by “LiRb (GeSiO), LiCs(GeSiO), NaRb(GeSiO), NaCs(GeSiO), KRb(GeSiO), KCs(GeSiO)” was probed using computational approaches due to density state analysis of charge density differences, total density of states, projected density of states, overlap projected density of states, and localized orbital locator for hydrogenated hybrid clusters of “LiRb(GeSiO)–2H, LiCs(GeSiO)–2H, NaRb(GeSiO)–2H, NaCs(GeSiO)–2H, KRb(GeSiO)–2H, KCs(GeSiO)–2H”. As the benefits of “lithium, sodium or potassium” over “Ge/Si” possess its higher electron and “hole motion”, permitting “Li, Na, K” devices to operate at higher frequencies than “Ge/Si” devices. Regarding optimized energy, KRb(GeSiO), KRb(GeSiO)–2H, KCs(GeSiO), and KCs(GeSiO)–2H heteroclusters have shown more stability than LiRb(GeSiO), LiRb(GeSiO)–2H, LiCs(GeSiO), LiCs(GeSiO)–2H, NaRb(GeSiO), NaRb(GeSiO) − 2H, NaCs(GeSiO), NaCs(GeSiO)–2H heteroclusters. In this research, hydrogen energy sources on functionalized 2D materials by metals have been shown as promising alternatives for clean energy systems. In a particular way, we have demonstrated here that (GeSiO) weakly adsorbs H. At the same time, the Li/Na/K decoration significantly enhances the H interaction, accommodating to H molecules by a stronger physisorption. Doping Rb or Sc on GeSiO can increase battery capacity through LiRb (GeSiO), LiCs(GeSiO), NaRb(GeSiO), NaCs(GeSiO), KRb(GeSiO), KCs(GeSiO) nanoclusters for hydrogen adsorption process and could improve the rate performances by enhancing electrical conductivity. A small portion of “Rb or Cs” entered the “Ge–Si” layer to replace the Li, Na or K sites might improve the structural stability of the electrode material at high multiplicity, thereby improving the capacity retention rate. Among these, LiRb (GeSiO), NaRb(GeSiO) and KRb(GeSiO) pretend to show the most hope in terms of “Rb” doping which can augment the capacity owing to higher surface capacitive impacts.To be specific, a scalable method is developed to fabricate the nanocomposite which acts as a simulated anode for Li-ion intercalation and subsequent Li alkali metal (Na, K/Rb, Cs) alloys owing to enhanced lithiophilicity and sufficient ion-conducting pathways.

SUPPLEMENTARY INFORMATION

The online version contains supplementary material available at 10.1186/s13065-025-01593-0.

摘要

未标注

在本研究中,锂(Li)、钠(Na)、钾(K)、铷(Rb)和铯(Cs)等碱金属已被用作电池单元的混合材料。由于对氢化混合团簇“LiRb(GeSiO)–2H、LiCs(GeSiO)–2H、NaRb(GeSiO)–2H、NaCs(GeSiO)–2H、KRb(GeSiO)–2H、KCs(GeSiO)–2H”进行了电荷密度差、总态密度、投影态密度、重叠投影态密度和局域轨道定位器的密度态分析,因此使用计算方法对“LiRb(GeSiO)、LiCs(GeSiO)、NaRb(GeSiO)、NaCs(GeSiO)、KRb(GeSiO)、KCs(GeSiO)”捕获氢的情况进行了广泛研究。由于“锂、钠或钾”相对于“锗/硅”具有更高的电子和“空穴迁移”优势,使得“锂、钠、钾”器件能够比“锗/硅”器件在更高频率下运行。关于优化能量,KRb(GeSiO)、KRb(GeSiO)–2H、KCs(GeSiO)和KCs(GeSiO)–2H异质团簇比LiRb(GeSiO)、LiRb(GeSiO)–2H、LiCs(GeSiO)、LiCs(GeSiO)–2H、NaRb(GeSiO)、NaRb(GeSiO)−2H、NaCs(GeSiO)、NaCs(GeSiO)–2H异质团簇表现出更高的稳定性。在本研究中,金属功能化二维材料上的氢能已被证明是清洁能源系统的有前途的替代方案。具体而言,我们在此证明了(GeSiO)对氢的吸附较弱。同时,锂/钠/钾修饰显著增强了氢相互作用,通过更强的物理吸附作用容纳氢分子。在GeSiO上掺杂铷或铯可通过LiRb(GeSiO)、LiCs(GeSiO)、NaRb(GeSiO)、NaCs(GeSiO)、KRb(GeSiO)、KCs(GeSiO)纳米团簇用于氢吸附过程来提高电池容量,并通过增强电导率来改善倍率性能。一小部分“铷或铯”进入“锗-硅”层以取代锂、钠或钾位点,可能会在高多重性下提高电极材料的结构稳定性,从而提高容量保持率。其中,LiRb(GeSiO)、NaRb(GeSiO)和KRb(GeSiO)在“铷”掺杂方面表现出最大的希望,由于更高的表面电容效应,其可以增加容量。具体来说,开发了一种可扩展的方法来制备纳米复合材料,该材料由于增强的亲锂性和足够的离子传导途径,可作为锂离子嵌入和随后锂碱金属(钠、钾/铷、铯)合金的模拟阳极。

补充信息

在线版本包含可在10.1186/s13065-025-01593-0获取的补充材料。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/eed7/12329880/a89c3c000c26/13065_2025_1593_Fig1_HTML.jpg

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