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三元复合介质增强锂-硒电池的可逆性

A Ternary Composite with Medium Adsorption Confirms Good Reversibility of Li-Se Batteries.

机构信息

Key Lab for Advanced Materials and Clean Energies of Technologies, Southwest University, Chongqing, 400715, P. R. China.

School of Materials and Energy, Southwest University, Chongqing, 400715, P. R. China.

出版信息

Adv Sci (Weinh). 2023 Jun;10(16):e2206962. doi: 10.1002/advs.202206962. Epub 2023 Apr 14.

Abstract

For Li-Se batteries, cathode using carbonaceous hosts to accommodate Se performed modestly, whereas those applying metallic compounds with stronger chemical adsorption exhibited even more rapid capacity decay, the intrinsic reasons for which are still not clear. Herein, it is found that Se tends to precipitate on the surface of the electrode during cycling, and the precipitation speed depends on the polarization degree of the host. A further enhanced adsorption does not certainly generate better electrochemical activity, since hosts with overhigh adsorption ability are hard to desorb polyselenides, leading to catalyst passivation and rapid capacity decay. These findings encourage us to design a ternary anatase/rutile/titanium nitride (aTiO /rTiO /TiN@C) composite host, integrating good adsorption of TiO and rapid electron transport ability of TiN, and introducing rutile to weaken overall adsorption. The aTiO /rTiO /TiN@C composite with medium adsorption not only avoids rapid loss of active substances in electrolyte but also slows down the precipitation speed of Se. As a result, the aTiO /rTiO /TiN@C/Se electrode delivered good rate capability(154 mA h g at 20 C) and good cycling stability(a low decay of 0.024% per cycle within 500 cycles at 2 C).

摘要

对于 Li-Se 电池,使用碳质主体来容纳 Se 的阴极表现出适度的性能,而那些应用具有更强化学吸附能力的金属化合物的阴极则表现出更快的容量衰减,其内在原因尚不清楚。本文发现,Se 在循环过程中倾向于在电极表面沉淀,沉淀速度取决于主体的极化程度。进一步增强吸附不一定会产生更好的电化学活性,因为具有过高吸附能力的主体很难解吸多硒化物,导致催化剂失活和容量快速衰减。这些发现促使我们设计了一种三元锐钛矿/金红石/氮化钛(aTiO /rTiO /TiN@C)复合主体,结合了 TiO 的良好吸附和 TiN 的快速电子传输能力,并引入金红石来减弱整体吸附。具有中等吸附能力的 aTiO /rTiO /TiN@C 复合材料不仅避免了电解质中活性物质的快速损失,而且还减缓了 Se 的沉淀速度。结果,aTiO /rTiO /TiN@C/Se 电极表现出良好的倍率性能(在 20 C 时为 154 mA h g)和良好的循环稳定性(在 2 C 时 500 次循环内的衰减率低至 0.024%)。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6519/10238200/618fe80240c9/ADVS-10-2206962-g005.jpg

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