<th id="5nh9l"></th><strike id="5nh9l"></strike><th id="5nh9l"><noframes id="5nh9l"><th id="5nh9l"></th><strike id="5nh9l"></strike>
<progress id="5nh9l"><noframes id="5nh9l"><th id="5nh9l"><noframes id="5nh9l">
<th id="5nh9l"></th> <strike id="5nh9l"><noframes id="5nh9l"><span id="5nh9l"></span>
<progress id="5nh9l"><noframes id="5nh9l"><span id="5nh9l"><noframes id="5nh9l"><span id="5nh9l"></span><strike id="5nh9l"><noframes id="5nh9l"><strike id="5nh9l"></strike>
<span id="5nh9l"><noframes id="5nh9l">
<span id="5nh9l"><noframes id="5nh9l">
<span id="5nh9l"></span><span id="5nh9l"><video id="5nh9l"></video></span>
<th id="5nh9l"><noframes id="5nh9l"><th id="5nh9l"></th>
<progress id="5nh9l"><noframes id="5nh9l">

磷酸酯基阻燃電解液用于高安全鋰硫電池

Nonflammable phosphate electrolytes for high-safety lithium–sulfur batteries

  • 摘要: Li–S電池被認為是最有希望的下一代高能量密度二次電池之一,開發高效阻燃電解液對于提升電池安全性極為重要. 本文對高濃度磷酸三乙酯(TEP)和磷酸三(2,2,2-三氟乙基)酯(TFP)電解液在鋰–硫化聚丙烯腈(Li–PAN/S)電池中的應用展開了深入研究,以同樣的鋰鹽摩爾比和氟代醚稀釋梯度,研究了TEP和TFP基局部高濃度電解液對鋰金屬負極和硫正極穩定性的影響,詳細解析了兩種溶劑分子在電池循環過程中的界面反應. 研究表明,磷酸酯基高濃度電解液在Li–PAN/S電池中展示了較優異的循環穩定性,通過優化TTE的稀釋比例,提升了電池的倍率特性. 對比基于TEP和TFP的電解液,發現TEP基電解液具有更好的鋰沉積/剝離性能,而TFP基電解液在界面生成更多的有機組分,導致不穩定的界面膜. 以TEP212為電解液的鋰硫電池能夠在1C的倍率下穩定循環200圈以上,放電比容量保持在1080.8 mA·h·g?1.

     

    Abstract: Lithium–sulfur battery is cost-effective and has a theoretical specific energy density of up to 2600 W·h·kg?1; moreover, the earth is rich in sulfur resources; therefore, it is considered a promising candidate for next-generation high-energy-density batteries. However, a few obstacles still persist in the process of commercialization, including the insulation of charge and discharge products, huge volume changes, flammable electrolytes, polysulfide “Shuttle Effect”, and unstable lithium metal anode. Among these challenges, safety is a main concern in the process of commercialization. Batteries using sulfurized polyacrylonitrile (PAN/S) as positive electrode active material have substantial advantages in terms of lifespan and a wider selection of electrolytes. As lithium polysulfide dissolution has not been considered, phosphate-based electrolytes can be used in this system because they also have good nonflammable properties. Phosphate-based flame retardants or nonflammable solvents can capture combustion free radicals and have excellent flame retardant effects as main solvents and flame retardant additives. This study explores the application of high-concentration triethyl phosphate (TEP) and tri (2,2,2-trifluoroethyl) phosphate (TFP) electrolytes in Li-PAN/S batteries to improve battery safety for next-generation high-energy-density secondary batteries. We investigate the effect of TEP and TFP-based electrolytes on the stability of lithium metal negative and sulfur positive electrodes as well as interfacial reactions during battery cycling. Chargedischarge and Li deposition/stripping tests were conducted using a high-concentration electrolyte with a molar ratio of 1∶2 between LiFSI and TEP. The results reveal that the electrolyte can achieve a 99.6% S utilization at 0.1 Cand stable Li deposition/stripping performance. However, the high viscosity and limited ionic conductivity of electrolyte limit its battery performance under high-loading electrode and high-rate conditions. By conducting electrochemical tests on TEP and TFP-based electrolytes with different TTE dilution ratios, we found that the charge–discharge overpotential of TFP-based electrolytes was higher, making it difficult to stably cycle in Li/Cu half cells. Furthermore, TFP molecules formed an unstable interface layer on the Li metal surface, which deteriorates the cell performance. After diluting TEP-based electrolyte with TTE at a volume fraction of 1∶2, excellent rate performance was achieved, with stable cycling of over 200 cycles at a rate of 1C and ultimately maintaining a discharge specific capacity of 1038.1 mA·h·g?1. These results highlight the potential of high-concentration TEP as a promising candidate for safer and higher-performing Li–S batteries.

     

/

返回文章
返回
<th id="5nh9l"></th><strike id="5nh9l"></strike><th id="5nh9l"><noframes id="5nh9l"><th id="5nh9l"></th><strike id="5nh9l"></strike>
<progress id="5nh9l"><noframes id="5nh9l"><th id="5nh9l"><noframes id="5nh9l">
<th id="5nh9l"></th> <strike id="5nh9l"><noframes id="5nh9l"><span id="5nh9l"></span>
<progress id="5nh9l"><noframes id="5nh9l"><span id="5nh9l"><noframes id="5nh9l"><span id="5nh9l"></span><strike id="5nh9l"><noframes id="5nh9l"><strike id="5nh9l"></strike>
<span id="5nh9l"><noframes id="5nh9l">
<span id="5nh9l"><noframes id="5nh9l">
<span id="5nh9l"></span><span id="5nh9l"><video id="5nh9l"></video></span>
<th id="5nh9l"><noframes id="5nh9l"><th id="5nh9l"></th>
<progress id="5nh9l"><noframes id="5nh9l">
259luxu-164