"Macro to micro" interface engineering-manipulated tin disulfide for stable and highly efficient sodium-ion electrified capture.

IF 10.7 2区 材料科学 Q1 CHEMISTRY, MULTIDISCIPLINARY
Yifan Ren, Ziqing Zhou, Mingxing Liang, Ningning Liu, Xiaochen Zhang, Fei Yu, Xin-Gui Li, Jie Ma
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引用次数: 0

Abstract

Tin disulfide (SnS2) with high theoretical capacity has been regarded as a promising candidate for sodium-ion capture, but it still encounters challenges of sluggish ion-storage kinetics and performance decay caused by its poor intrinsic conductivity and volume change. Here, we successfully address the aforementioned issues of SnS2 by synthesizing hollow ZnS/SnS2 microboxes embedded in sulfur-doped graphene (ZnS/SnS2@SG) through a macro (soft/hard interface) to micro (heterogeneous) interface engineering design. The resulting ZnS/SnS2@SG displays superior capacitive deionization (CDI) performance, including an impressive desalination capacity (109.7 mgNaCl g-1) with an ultrafast time-average desalination rate of 10.1 mgNaCl g-1 min-1 and attractive cyclic durability, outperforming most of the reported state-of-the-art CDI electrodes. The interface optimization of the surface structure and atomic-scale enhances the desalination performance, which can be decoupled into carbon substrate protection and charge rearrangement modulation, that is, graphene as a soft buffer layer alleviates volume expansion, and internal electric field induced by a uniform heterojunction lowers the Na+ diffusion energy barrier. Density functional theory calculations further confirmed that the uniform heterostructure facilitates the adsorption of Na+ and spontaneous electron transfer, thus achieving high electrochemical performance. The interface engineering strategy showcased in this work exhibits great potential in guiding material innovations for next-generation electrochemical ion capture.

“宏-微”界面工程——用于稳定高效钠离子电捕获的操纵二硫化锡。
二硫化锡(SnS2)具有较高的理论容量,被认为是一种很有前途的钠离子捕获候选材料,但由于其固有电导率差和体积变化,其离子存储动力学缓慢,性能下降。在这里,我们通过宏(软/硬界面)到微(异质)界面工程设计,成功地合成了嵌入硫掺杂石墨烯(ZnS/SnS2@SG)的空心ZnS/SnS2微盒,解决了上述SnS2问题。得到的ZnS/SnS2@SG具有优异的电容去离子(CDI)性能,包括令人印象深刻的脱盐能力(109.7 mgNaCl g-1)、超快的时间平均脱盐速率(10.1 mgNaCl g-1 min-1)和有吸引力的循环耐久性,优于大多数报道的最先进的CDI电极。表面结构和原子尺度的界面优化提高了脱盐性能,可以解耦为碳衬底保护和电荷重排调制,即石墨烯作为软缓冲层减轻了体积膨胀,均匀异质结诱导的内部电场降低了Na+扩散能垒。密度泛函理论计算进一步证实,均匀的异质结构有利于Na+的吸附和自发电子转移,从而获得较高的电化学性能。在这项工作中展示的界面工程策略在指导下一代电化学离子捕获材料创新方面显示出巨大的潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Materials Horizons
Materials Horizons CHEMISTRY, MULTIDISCIPLINARY-MATERIALS SCIENCE, MULTIDISCIPLINARY
CiteScore
18.90
自引率
2.30%
发文量
306
审稿时长
1.3 months
期刊介绍: Materials Horizons is a leading journal in materials science that focuses on publishing exceptionally high-quality and innovative research. The journal prioritizes original research that introduces new concepts or ways of thinking, rather than solely reporting technological advancements. However, groundbreaking articles featuring record-breaking material performance may also be published. To be considered for publication, the work must be of significant interest to our community-spanning readership. Starting from 2021, all articles published in Materials Horizons will be indexed in MEDLINE©. The journal publishes various types of articles, including Communications, Reviews, Opinion pieces, Focus articles, and Comments. It serves as a core journal for researchers from academia, government, and industry across all areas of materials research. Materials Horizons is a Transformative Journal and compliant with Plan S. It has an impact factor of 13.3 and is indexed in MEDLINE.
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