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Cerium Oxide–Polysulfone Composite Separator for an Advanced Alkaline Electrolyzer

机译:用于先进碱性电解器的氧化铈 - 聚砜复合分离器

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摘要

The intermittent and volatile nature of renewable energy sources threatens the stable operation of power grids, necessitating dynamically operated energy storage. Power-to-gas technology is a promising method for managing electricity variations on a large gigawatt (GW) scale. The electrolyzer is a key component that can convert excess electricity into hydrogen with high flexibility. Recently, organic/inorganic composite separators have been widely used as diaphragm membranes; however, they are prone to increase ohmic resistance and gas crossover, which inhibit electrolyzer efficiency. Here, we show that the ceria nanoparticle and polysulfone composite separator exhibits a low area resistance of 0.16 Ω cm2 and a hydrogen permeability of 1.2 × 10–12 mol cm–1 s–1 bar–1 in 30 wt% potassium hydroxide (KOH) electrolyte, which outperformed the commercial separator, the Zirfon PERL separator. The cell using a 100 nm ceria nanoparticle/polysulfone separator and advanced catalysts has a remarkable capability of 1.84 V at 800 mA cm−2 at 30 wt% and 80 °C. The decrease in the average pore size of 77 nm and high wettability (contact angle 75°) contributed to the reduced ohmic resistance and low gas crossover. These results demonstrate that the use of ceria nanoparticle-based separators can achieve high performance compared to commercial zirconia-based separators.
机译:可再生能源的间歇性和挥发性性质威胁到电网的稳定运行,需要动态操作的能量存储。电力到天然气技术是对大型千岁(GW)规模的电力变化的有希望的方法。电解槽是一个关键组件,可以将过量的电力转化为具有高柔韧性的氢气。最近,有机/无机复合隔膜已被广泛用作隔膜膜;然而,它们易于增加欧姆的抗性和气体交叉,这抑制了电解效率。在这里,我们表明,二氧化铈纳米粒子和聚砜复合隔膜显示出0.16Ωcm2的低面积电阻和1.2×10-12mol cm-1s-1b-1中的氢气渗透率为30wt%氢氧化钾(Koh)电解质,其优于商业分离器,ZIRFON Perl分离器。使用100nm Ceria纳米颗粒/聚砜分离器和先进催化剂的电池具有180mC cm-2的显着能力,在30wt%和80℃下为1.84V。平均孔径为77nm和高润湿性(接触角75°)的降低有助于降低的欧姆电阻和低气体交叉。这些结果表明,与基于商业氧化锆的分离器相比,使用基于Ceria纳米粒子的分离器可以实现高性能。

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