硅烯
日耳曼
材料科学
硅
剥脱关节
电化学
表面改性
锂(药物)
纳米技术
化学工程
电极
石墨烯
光电子学
物理化学
化学
医学
内分泌学
工程类
作者
Shuangying Wei,Tomáš Hartman,Stefanos Mourdikoudis,Xueting Liu,Gang Wang,Evgeniya Kovalska,Bing Wu,Jalal Azadmanjiri,Ruizhi Yu,Levna Chacko,Lukáš Děkanovský,Filipa M. Oliveira,Min Li,Jan Luxa,Saeed Ashtiani,Jincang Su,Zdeněk Sofer
标识
DOI:10.1002/advs.202308955
摘要
Abstract The adjustable structures and remarkable physicochemical properties of 2D monoelemental materials, such as silicene and germanene, have attracted significant attention in recent years. They can be transformed into silicane (SiH) and germanane (GeH) through covalent functionalization via hydrogen atom termination. However, synthesizing these materials with a scalable and low‐cost fabrication process to achieve high‐quality 2D SiH and GeH poses challenges. Herein, groundbreaking 2D SiH and GeH materials with varying compositions, specifically Si 0.25 Ge 0.75 H, Si 0.50 Ge 0.50 H, and Si 0.75 Ge 0.25 H, are prepared through a simple and efficient chemical exfoliation of their Zintl phases. These 2D materials offer significant advantages, including their large surface area, high mechanical flexibility, rapid electron mobility, and defect‐rich loose‐layered structures. Among these compositions, the Si 0.50 Ge 0.50 H electrode demonstrates the highest discharge capacity, reaching up to 1059 mAh g −1 after 60 cycles at a current density of 75 mA g −1 . A comprehensive ex‐situ electrochemical analysis is conducted to investigate the reaction mechanisms of lithiation/delithiation in Si 0.50 Ge 0.50 H. Subsequently, an initial assessment of the c ‐Li 15 (Si x Ge 1‐ x ) 4 phase after lithiation and the a ‐Si 0.50 Ge 0.50 phase after delithiation is presented. Hence, this study contributes crucial insights into the (de)lithiation reaction mechanisms within germanane‐silicane alloys. Such understanding is pivotal for mastering promising materials that amalgamate the finest properties of silicon and germanium.
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