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Borophene's tryst with stability: exploring 2D hydrogen boride as an electrode for rechargeable batteries

机译:硼烯烯的Tryst具有稳定性:探索2D硼化氢作为可充电电池的电极

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摘要

Graphene's emergence can be viewed as a positive upheaval in 2D materials research. Along the same line, the realization of a related elemental 2D material, borophene, is another breakthrough. To circumvent the stability issues of borophene, which is reported to have been synthesized on metallic substrates under extreme conditions, hydrogenation of borophene (otherwise called as borophane or hydrogen boride or boron hydride) has been a plausible solution, but only proposed computationally. A recent report (H. Nishino, T. Fujita, N. T. Cuong, S. Tominaka, M. Miyauchi, S. Iimura, A. Hirata, N. Umezawa, S. Okada, E. Nishibori, A. Fujino, T. Fujimori, S. Ito, J. Nakamura, H. Hosono and T. Kondo, J. Am. Chem. Soc. , 2017, 139 (39), 13761–13769) brings to fore its experimental realization. Our current study delves into the possibilities of employing this intriguing 2D hydrogen boride as anodes in Li/Na ion batteries. Using first-principles density functional theory methods, we computed relevant properties such as the ion (Li/Na) adsorption behavior, the possible pathways of ionic diffusion with the estimation of barriers as well as the theoretical specific capacities and average voltages to uniquely demonstrate that this material is of particular significance for battery applications. It is noted that the use of hydrogen boride leads to a high specific capacity of 861.78 mA h g ~(?1) for Li ions, which is remarkably higher than the value reported in relation to its computationally predicted structure. Furthermore, Na ion intercalation leads to negative voltage profiles, implying the unsuitability of 2D hydrogen boride for this particular ion. Our findings are timely and pertinent towards adding insightful details relevant to the progress of applications of 2D materials for energy storage.
机译:石墨烯的出现可以被视为2D材料研究中的积极动荡。沿同一条线,实现相关元素2D材料,脱臼是另一个突破。为了规避丙烯烯的稳定性问题,据报道在极端条件下已经在金属底物上合成,硼烯的氢化(否则称为硼烷或硼化物或硼氢化物)是合理的解决方案,而是仅在计算上提出。最近的一份报告(H. Nishino,T.Fjita,NT Cuong,S. Tominaka,M.Miyauchi,S.Iimura,A. Hirata,N.Muezawa,S. Okada,E. Nishibori,A. Fujimini,T. Fujimori ,S. ITO,J.Nakamura,H. Hosono和T.Kondo,J.AM。Chem。SoC。SoC。,2017,139(39),13761-13769)带来了实验性实现。我们目前的研究涉及在Li / Na离子电池中使用这种有趣的2D氢硼化物作为阳极的可能性。使用第一原理函数理论方法,我们计算了离子(Li / Na)吸附行为的相关性质,离子扩散的可能途径与屏障的估计以及理论特定容量和平均电压唯一证明这一点这种材料对于电池应用特别重要。应注意,硼化物的使用导致Li离子的861.78mA H G〜(α1)的高比容量,其显着高于与其计算预测结构相关的值的值。此外,Na离子插入导致负电压型材,暗示2D硼化物用于该特定离子的不适合性。我们的调查结果及时而有关,可以在增加与储能储存的2D材料应用进展相关的有关相关的洞察力细节。

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    Condensed Matter Theory Group Materials Theory Division Department of Physics and Astronomy Uppsala University;

    Condensed Matter Theory Group Materials Theory Division Department of Physics and Astronomy Uppsala University;

    Condensed Matter Theory Group Materials Theory Division Department of Physics and Astronomy Uppsala University;

    Condensed Matter Theory Group Materials Theory Division Department of Physics and Astronomy Uppsala University;

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  • 正文语种 eng
  • 中图分类 物理学;化学;
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