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调整电子结构以实现快速锂离子扩散和稳定的富含LiF-LiCl的电极-电解质界面。

Tailoring the electronic structure to enable rapid Li-ion diffusion and a stabilized LiF-LiCl rich electrode-electrolyte interface.

作者信息

Su Shan, Zhou Xuanyi, Liang Weizhong, Su Zhuoriu, Qu Yibing, Zhong Yuhan, Qiu Jinghong, Zhang Biao

机构信息

Key Laboratory of Low Dimensional Materials and Application Technology of Ministry of Education, School of Materials Science and Engineering, Xiangtan University Hunan 411105 China

Hunan Provincial Key Laboratory of Thin Film Materials and Devices, School of Materials Science and Engineering, Xiangtan University Xiangtan 411105 China.

出版信息

Chem Sci. 2025 Sep 19. doi: 10.1039/d5sc05254h.

Abstract

The chemical composition of the solid electrolyte interphase (SEI) at the Li anode/electrolyte interface is critical to the performance of lithium metal batteries. Herein, we designed a functional ionic salt (DG-Cl) with a π-conjugated structure, aiming to enhance the electronic delocalization of the filler to regulate the bond-breaking kinetics and promote the formation of the effective components of the SEI. Density functional theory (DFT) verifies that DG-Cl is capable of releasing Cl directionally under an electric field and subsequently combining with Li to form LiCl. Simultaneously, DG-Cl can anchor TFSI cation vacancies. Besides, through its strong electron delocalization capability, DG-Cl could facilitate the cleavage of C-F bonds of TFSI during the binding process (with charge transfer reaching up to 1.8453 ), thereby promoting the formation of more LiF. XPS and TOF-SIMS confirmed the uniform co-growth of LiF-LiCl on the SEI, which facilitates the Li-ion transport kinetics and regulates the lithium deposition behavior. Impressively, the lithium symmetric batteries deliver ultralong cycling stability over 4000 hours at 0.1 mA cm and over 2200 hours at 0.2 mA cm while the Li/LiFePO full cells possess 82.04% capacity retention after 800 cycles at 2C. Besides, this approach to regulating electron transfer at the molecular level guarantees the outstanding cycling performance of pouch cells. After 150 cycles, the battery retention rate was 96.6%. This work proposes a new approach to achieving high-performance and stable lithium metal batteries (LMBs).

摘要

锂负极/电解质界面处的固体电解质界面(SEI)的化学成分对锂金属电池的性能至关重要。在此,我们设计了一种具有π共轭结构的功能性离子盐(DG-Cl),旨在增强填料的电子离域以调节键断裂动力学,并促进SEI有效成分的形成。密度泛函理论(DFT)验证了DG-Cl能够在电场作用下定向释放Cl,随后与Li结合形成LiCl。同时,DG-Cl可以锚定TFSI阳离子空位。此外,通过其强大的电子离域能力,DG-Cl在结合过程中可以促进TFSI的C-F键断裂(电荷转移高达1.8453),从而促进更多LiF的形成。XPS和TOF-SIMS证实了LiF-LiCl在SEI上均匀共生长,这有利于锂离子传输动力学并调节锂沉积行为。令人印象深刻的是,锂对称电池在0.1 mA cm下具有超过4000小时的超长循环稳定性,在0.2 mA cm下具有超过2200小时的超长循环稳定性,而Li/LiFePO全电池在2C下800次循环后容量保持率为82.04%。此外,这种在分子水平上调节电子转移的方法保证了软包电池出色的循环性能。150次循环后,电池保留率为96.6%。这项工作提出了一种实现高性能和稳定锂金属电池(LMB)的新方法。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b907/12461286/9639a8ee79cd/d5sc05254h-f1.jpg

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