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Water-in-Salt Electrolyte (WiSE) for Aqueous Batteries: A Long Way to Practicality

机译:含水电池的盐水电解质(明智):实用性很长

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摘要

The sustainability of battery components is becoming a key parameter for storing renewable energy at large scale. Toward that goal, several strategies are currently being explored. Great hopes are placed in the use of superconcentrated aqueous electrolytes, which enlarge the electrochemical stability window well beyond 1.2 V. Although fundamentally elegant, the practicability of such an approach remains unknown. Therefore, an in-depth analysis of the stability and cycling behavior of water-in-salt (WiSE) and water-in-bisalt (WiBS) electrolytes as a function of concentration and temperature is carried out by monitoring via combined operando gas monitoring, cyclic voltammetry, and self-discharge experiments the solid electrolyte interphase (SEI) growth and stability. The SEI formed on the negative electrode is found to not be able to protect the battery against continuous electrolyte degradation through water reduction during both cycling and storage; this inefficiency is increased at elevated temperatures. This result contrasts with the less severe impact of water oxidation. The data are benchmarked against other commercial batteries. It is shown that WiSE-based batteries in their current form cannot compete with lead-acid, Ni-Cd or nickel-metal hydride commercial aqueous batteries in terms of price, operating temperature range, lifetime, and capacity fading upon storage. So the practical outcome of the superconcentrated aqueous electrolyte remains highly uncertain.
机译:电池组件的可持续性正在成为以大规模存储可再生能源的关键参数。走向该目标,目前正在探索几种策略。大希望置于使用过度浓缩的水性电解质,该电解质良好地扩大了电化学稳定性窗口超过1.2 V.虽然从根本上优雅地,这种方法的实用性仍然未知。因此,通过通过组合的Operando气体监测监测,对作为浓度和温度的函数进行盐水(明智)和水 - 醇(WIB)电解质的稳定性和循环行为的深度分析,循环伏安法,以及自放电实验,固体电解质间差(SEI)生长和稳定性。发现在负电极上形成的SEI不能通过循环和储存期间通过降水来保护电池免受连续电解质劣化;这种低效率在升高的温度下增加。这结果与水氧化的严重造成较小的影响造影。数据采用其他商用电池基准测试。结果表明,其目前形式的智能电池不能在价格,工​​作温度范围,寿命和储存时呈现铅酸,Ni-Cd或镍 - 金属氢化物商业含水电池。因此,超浓度的含水电解质的实际结果仍然高度不确定。

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  • 来源
    《Advanced energy materials》 |2020年第43期|2002440.1-2002440.14|共14页
  • 作者单位

    Coll France Chim Solide & Energie UMR 8260 11 Pl Marcelin Berthelot F-75231 Paris 05 France|Sorbonne Univ 4 Pl Jussieu F-75005 Paris France|CNRS FR3459 Reseau Stockage Electrochem Energie RS2E 33 Rue St Leu F-80039 Amiens France;

    Coll France Chim Solide & Energie UMR 8260 11 Pl Marcelin Berthelot F-75231 Paris 05 France|CNRS FR3459 Reseau Stockage Electrochem Energie RS2E 33 Rue St Leu F-80039 Amiens France;

    CNRS FR3459 Reseau Stockage Electrochem Energie RS2E 33 Rue St Leu F-80039 Amiens France|Univ Montpellier Inst Charles Gerhardt Montpellier UMR 5253 Pl Eugene Bataillon F-34095 Montpellier France;

    Coll France Chim Solide & Energie UMR 8260 11 Pl Marcelin Berthelot F-75231 Paris 05 France|Sorbonne Univ 4 Pl Jussieu F-75005 Paris France|CNRS FR3459 Reseau Stockage Electrochem Energie RS2E 33 Rue St Leu F-80039 Amiens France;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    aqueous batteries; figure of merit; lithium ion; SEI stability; self-discharge; superconcentrated electrolytes; water-in-salt;

    机译:含水电池;优点的形象;锂离子;SEI稳定性;自放电;超级浓度的电解质;水 - 盐;

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