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Critical role of intercalated water for electrocatalytically active nitrogen-doped graphitic systems

机译:插层水在电催化活性氮掺杂石墨体系中的关键作用

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摘要

Graphitic materials are essential in energy conversion and storage because of their excellent chemical and electrical properties. The strategy for obtaining functional graphitic materials involves graphite oxidation and subsequent dissolution in aqueous media, forming graphene-oxide nanosheets (GNs). Restacked GNs contain substantial intercalated water that can react with heteroatom dopants or the graphene lattice during reduction. We demonstrate that removal of intercalated water using simple solvent treatments causes significant structural reorganization, substantially affecting the oxygen reduction reaction (ORR) activity and stability of nitrogen-doped graphitic systems. Amid contrasting reports describing the ORR activity of GN-based catalysts in alkaline electrolytes, we demonstrate superior activity in an acidic electrolyte with an onset potential of ~0.9 V, a half-wave potential (E½) of 0.71 V, and a selectivity for four-electron reduction of >95%. Further, durability testing showed E½ retention >95% in N2- and O2-saturated solutions after 2000 cycles, demonstrating the highest ORR activity and stability reported to date for GN-based electrocatalysts in acidic media.
机译:石墨材料具有出色的化学和电学性质,因此在能量转换和存储中必不可少。获得功能性石墨材料的策略包括石墨氧化和随后在水性介质中的溶解,从而形成氧化石墨烯纳米片(GNs)。重新堆叠的GN含有大量的插层水,在还原过程中,它们可能与杂原子掺杂剂或石墨烯晶格发生反应。我们证明,使用简单的溶剂处理去除插层水会导致结构上的重大重组,从而大大影响氧还原反应(ORR)的活性和氮掺杂石墨系统的稳定性。在描述GN基催化剂在碱性电解液中的ORR活性的对比报告中,我们证明了在酸性电解液中具有优越的活性,其起始电势约为0.9 V,半波电势(E½)为0.71 V,对四种离子的选择性-电子减少> 95%。此外,耐久性测试表明,经过2000次循环后,N1 / 2和O2饱和溶液中的E½保留率> 95%,这证明了迄今为止在酸性介质中基于GN的电催化剂的最高ORR活性和稳定性。

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