实现高性能锂硫电池的一步一步设计策略。

IF 5.5 3区 材料科学 Q2 CHEMISTRY, PHYSICAL ACS Applied Energy Materials Pub Date : 2025-01-28 eCollection Date: 2025-02-10 DOI:10.1021/acsaem.4c02457
Matthew J Dent, Sean Grabe, Steven J Hinder, Mateus G Masteghin, James D Whiting, John F Watts, Constantina Lekakou
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引用次数: 0

摘要

为了提高锂硫电池的能量密度和可循环性,设计并评估了高性能锂硫电池的组合策略。它包括以下步骤,以减少液体电解质中迁移到阳极的活性硫和硫化物的损失,并在阴极或阴极液中添加电催化剂基团:(i)空心多孔纳米颗粒涂层阴极主体,带有假电容性PEDOT:PSS粘合剂,也有助于捕获多硫化物。(ii)在上述阴极上的b - n -石墨烯(BNG)纳米片薄夹层捕获多硫化物,同时参与电子转移并充当电催化剂,从而确保捕获的硫化物在阴极中保持活性。(iii)在阴极液中加入半导体酞菁VOPc或CoPc形成电催化剂网络,捕获多硫化物并促进其与Li+离子的氧化还原反应。(iv)在液体电解质中加入丝素蛋白,也抑制了锂阳极上枝晶的生长。该策略在实验表征的Li-S电池和基于多孔连续物理化学模型的模拟中逐步进行评估,吸附能量数据来自分子动力学模拟。在所有情况下,喷涂在阴极上的薄BNG夹层被证明是提高电池性能的决定性因素。结合(i)、(ii)和(iv)的特性,阴极含45 wt % S的锂电池,在不同的c -速率下,第一次放电时产生1372 mAh gS -1,第100次放电时产生920 mAh gS -1。结合了(i)、(ii)和(iii)的特性,且正极含55 wt % S的锂电池在第一次和第100次放电时分别产生805和586 mAh的gS -1。
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A Step-by-Step Design Strategy to Realize High-Performance Lithium-Sulfur Batteries.

In order to increase the energy density and improve the cyclability of lithium-sulfur (Li-S) batteries, a combined strategy is devised and evaluated for high-performance Li-S batteries. It consists of the following steps to reduce the loss of active sulfur and sulfides migrating in the liquid electrolyte to the anode and add electrocatalyst groups in the cathode or catholyte: (i) A hollow porous nanoparticle coating cathode host with a pseudocapacitive PEDOT:PSS binder that also contributes to trapping polysulfides. (ii) A thin interlayer of B-N-graphene (BNG) nanoplatelets on the above cathode trapping polysulfides while participating in the electron transfer and acting as an electrocatalyst, thus ensuring that the trapped sulfides remain active in the cathode. (iii) Added semiconductor phthalocyanine VOPc or CoPc to form an electrocatalyst network in the catholyte, trapping polysulfides and promoting their redox reactions with Li+ ions. (iv) Added silk fibroin in the liquid electrolyte, which also suppresses dendritic growth on the lithium anode. This strategy is evaluated step-by-step in Li-S battery cells characterized experimentally and in simulations based on a multipore continuum physicochemical model with adsorption energy data supplied from molecular dynamics simulations. The thin BNG interlayer sprayed on the cathode proved a decisive factor in improving cell performance in all cases. A Li-S cell combining features from (i), (ii), and (iv) and with 45 wt % S in the cathode yields 1372 mAh gS -1 at first discharge and 920 mAh gS -1 at the 100th discharge after a cycling schedule at different C-rates. A Li-S cell combining features from (i), (ii), and (iii) and with 55 wt % S in the cathode yields 805 and 586 mAh gS -1 at the first and the 100th discharge, respectively.

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来源期刊
ACS Applied Energy Materials
ACS Applied Energy Materials Materials Science-Materials Chemistry
CiteScore
10.30
自引率
6.20%
发文量
1368
期刊介绍: ACS Applied Energy Materials is an interdisciplinary journal publishing original research covering all aspects of materials, engineering, chemistry, physics and biology relevant to energy conversion and storage. The journal is devoted to reports of new and original experimental and theoretical research of an applied nature that integrate knowledge in the areas of materials, engineering, physics, bioscience, and chemistry into important energy applications.
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