Regulation of Ethanol on Ferrous Oxalate Particle Size and Properties: Theoretical and Experimental Study

IF 1.9 4区 化学 Q3 CHEMISTRY, MULTIDISCIPLINARY
Feilong Tang, Zhongqian Zhao, Kun Ren, Dr. Jian Wu, Prof. Xiumin Chen, Peilin Xu, Hongfei Sun, Qi Liu, Yunhu Yi, Qiyou Chen
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Abstract

Surfactants containing hydroxyl functional groups have a significant influence on the morphology of ferrous oxalate dihydrate. However, few studies have provided a theoretical explanation for this effect. In this investigation, the size of ferrous oxalate dihydrate was reduced from micron to nanometer scale using anhydrous ethanol, and its mechanism was elucidated through density functional theory calculations. The calculational results reveal that anhydrous ethanol molecules bound to the ferrous oxalate dihydrate crystal via hydrogen bonding and van der Waals forces, thereby controlling crystal growth. It means that anhydrous ethanol molecules preferentially affected the interlayer interaction in the structure of ferrous oxalate dihydrate, leading to a significant impact on its overall crystal growth way. Furthermore, the electrochemical properties of ferrous oxalate dihydrate synthesized in aqueous and anhydrous ethanol systems were compared and tested. The specific capacitance (242 F ⋅ g−1 at 0.5 A ⋅ g−1 current density) of ferrous oxalate dihydrate synthesized in anhydrous ethanol system is obvious higher than that of ferrous oxalate dihydrate synthesized in water system (186 F ⋅ g−1), due to its smaller particle size (75 nm). Furthermore, the specific capacitance of this material can be improved to 469 F ⋅ g−1 during composite process of ferrous oxalate dihydrate with graphene oxide.

Abstract Image

乙醇对草酸亚铁粒度和性质的调节:理论与实验研究
含有羟基官能团的表面活性剂对草酸亚铁二水合物的形态有重大影响。然而,很少有研究能从理论上解释这种影响。本研究利用无水乙醇将二水草酸亚铁的尺寸从微米级减小到纳米级,并通过密度泛函理论计算阐明了其机理。计算结果表明,无水乙醇分子通过氢键和范德华力与二水草酸亚铁晶体结合,从而控制晶体生长。这说明无水乙醇分子优先影响了二水草酸亚铁结构中的层间相互作用,从而对其整体晶体生长方式产生了重大影响。此外,还比较和测试了在水溶液和无水乙醇体系中合成的二水草酸亚铁的电化学特性。在无水乙醇体系中合成的二水草酸亚铁的比电容(在 0.5 A ⋅ g-1 电流密度下为 242 F ⋅ g-1)明显高于在水体系中合成的二水草酸亚铁的比电容(186 F ⋅ g-1),这是因为二水草酸亚铁的粒径较小(75 nm)。此外,在二水草酸亚铁与氧化石墨烯的复合过程中,这种材料的比电容可提高到 469 F⋅ g-1。
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来源期刊
ChemistrySelect
ChemistrySelect Chemistry-General Chemistry
CiteScore
3.30
自引率
4.80%
发文量
1809
审稿时长
1.6 months
期刊介绍: ChemistrySelect is the latest journal from ChemPubSoc Europe and Wiley-VCH. It offers researchers a quality society-owned journal in which to publish their work in all areas of chemistry. Manuscripts are evaluated by active researchers to ensure they add meaningfully to the scientific literature, and those accepted are processed quickly to ensure rapid online publication.
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