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Decorating sulfur and nitrogen co-doped graphene quantum dots on graphite felt as high-performance electrodes for vanadium redox flow batteries

机译:石墨上装饰硫和氮气共掺杂石墨烯量子点作为钒氧化还原电池的高性能电极

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This paper reports on decorating sulfur (S)/nitrogen (N) co-doped graphene quantum dots (S/N co-doped GQDs) on graphite felt as high-performance electrodes for vanadium redox flow batteries (VRFBs). The S/N co-doped GQDs are synthesized through an efficient infrared-assisted pyrolysis of glucose, urea, and ammonia sulfate at 280 degrees C. The S/N co-doped GQDs, having an average diameter of 6.2 nm, contain high oxidation, amidation, and sulfuration levels (45.8 (O/C), 22.7 (N/C), and 7.8 at.% (S/C), respectively). Electrochemical impedance spectroscopy is utilized to assess the overpotential distributions for VRFBs equipped with untreated GF and S/N co-doped GQDs/GF. With the aid of S/N co-doped GQDs, the catalytic activity, equivalent series resistance, durability, and voltage efficiency are substantially improved. The improved performance is attributed to the synergistic effect of GQDs containing O functionalities, lattice N atoms, and S dopants, facilitating surface catalytic activity and accelerating charge transfer across the anode/anolyte interface for the vanadium redox couples (V (II)/V(III)). Accordingly, hierarchical S/N co-doped GQD/GF electrode paves the pathway for engineering the electrodes' nano-structure with improved catalytic activity and enhanced durability for redox flow batteries.
机译:本文关于装饰硫(S)/氮(N)共掺杂石墨烯量子点(S / N共掺杂GQDS)的石墨含量为钒氧化还原流量电池(VRFBS)的高性能电极。 S / N共掺杂GQD通过高效的红外辅助热解,在280℃下通过有效的红外辅助热解合成。平均直径为6.2nm的S / N共掺杂GQD含有高氧化,酰胺化和硫化水平(45.8(O / C),22.7(N / C)和7.8分别)。%(S / C))。电化学阻抗光谱用于评估配备有未处理的GF和S / N共掺杂GQDS / GF的VRFB的过电势分布。借助S / N共掺杂GQD,催化活性,等效串联电阻,耐久性和电压效率显着提高。改进的性能归因于含有官能团,晶格N原子和S掺杂剂的GQDS的协同作用,促进表面催化活性和在钒氧化还原耦合的阳极/阳极电极界面上加速电荷转移(V(II)/ V( iii)))。因此,等级S / N共掺杂GQD / GF电极铺设了用于工程电极纳米结构的通路,具有改善的催化活性,并提高氧化还原流量电池的耐久性。

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