溶解度
锌
流动电池
电池(电)
能量密度
溴
材料科学
流量(数学)
化学
化学工程
冶金
热力学
工程物理
有机化学
工程类
物理
机械
功率(物理)
作者
Shain Sagar Mollick,Tapas Kumar Mandal,Srinivasan Ramakrishnan
标识
DOI:10.1149/1945-7111/ad9fe2
摘要
The non-flow zinc-bromine battery (ZBB) is a promising, energy-dense alternative to lead-acid batteries for stationary storage applications. Yet it is plagued by instabilities related to self-discharge and corrosion caused by Br 2 , which is the product of charging. We report an energy-dense, non-flow ZBB achieved through a systematic screening of tetraalkylammonium halide (QX, where Q = tetraalkylammonium, X=Br – , Cl – ) based Br 2 trapping agents via solubility product measurements of the respective charged products, i.e. QBr 3 , simultaneously optimizing for the highest achievable ZnBr 2 + QX concentration to maximize cell capacity. Through this strategy, we found that tetraethylammonium chloride (TEACl) provided an optimal bromine trapping ability while enabling high ZnBr 2 solubility via the suppression of (TEA) 2 [ZnX 4 ] formation. These attributes led to enhanced coulombic efficiency, lower charge/discharge hysteresis, and improved capacity retention at high states of charge as compared to other quaternary ammonium salts. Using porous carbon electrodes in a low-cost, stackable cell design that enables refurbishment of all the cell components, we were able to achieve extended cycling stability and a cell level energy density of 154 Wh kg −1 .
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