...
首页> 外文期刊>Physical chemistry chemical physics: PCCP >The doping effect on the catalytic activity of graphene for oxygen evolution reaction in a lithium-air battery: a first-principles study
【24h】

The doping effect on the catalytic activity of graphene for oxygen evolution reaction in a lithium-air battery: a first-principles study

机译:掺杂对锂-空气电池中石墨烯催化氧释放反应的催化活性的影响:第一性原理研究

获取原文
获取原文并翻译 | 示例
           

摘要

A lithium-air battery as an energy storage technology can be used in electric vehicles due to its large energy density. However, its poor rate capability, low power density and large overpotential problems limit its practical usage. In this paper, the first-principles thermodynamic calculations were performed to study the catalytic activity of X-doped graphene (X = B, N, Al, Si, and P) materials as potential cathodes to enhance charge reactions in a lithium-air battery. Among these materials, P-doped graphene exhibits the highest catalytic activity in reducing the charge voltage by 0.25 V, while B-doped graphene has the highest catalytic activity in decreasing the oxygen evolution barrier by 0.12 eV. By combining these two catalytic effects, B, P-codoped graphene was demonstrated to have an enhanced catalytic activity in reducing the O-2 evolution barrier by 0.70 eV and the charge voltage by 0.13 V. B-doped graphene interacts with Li2O2 by Li-sited adsorption in which the electron-withdrawing center can enhance charge transfer from Li2O2 to the substrate, facilitating reduction of O-2 evolution barrier. In contrast, X-doped graphene (X = N, Al, Si, and P) prefers O-sited adsorption toward Li2O2, forming a X-O-2(2-)...Li+ interface structure between X-O-2(2-) and the rich Li+ layer. The active structure of X-O-2(2-) can weaken the surrounding Li-O-2 bonds and significantly reduce Li+ desorption energy at the interface. Our investigation is helpful in developing a novel catalyst to enhance oxygen evolution reaction (OER) in Li-air batteries.
机译:作为能量存储技术的锂空气电池由于其高能量密度而可以用于电动汽车。然而,其差的速率能力,低功率密度和大的超电势问题限制了其实际使用。在本文中,进行了第一性原理热力学计算,以研究掺杂X的石墨烯(X = B,N,Al,Si和P)材料作为潜在阴极以增强锂空气电池的充电反应的催化活性。 。在这些材料中,P掺杂的石墨烯在降低充电电压0.25 V时表现出最高的催化活性,而B掺杂的石墨烯在将氧气析出势垒降低0.12 eV时具有最高的催化活性。结合这两种催化作用,证明B,P掺杂的石墨烯具有增强的催化活性,可将O-2析出势垒降低0.70 eV,充电电压降低0.13V。B掺杂的石墨烯通过Li-与Li2O2相互作用定点吸附,其中吸电子中心可以增强电荷从Li2O2到基质的转移,有利于O-2放出势垒的减少。相比之下,掺X的石墨烯(X = N,Al,Si和P)更倾向于对Li2O2进行O定位吸附,从而在XO-2(2-)之间形成XO-2(2-)... Li +界面结构和丰富的Li +层。 X-O-2(2-)的活性结构可以削弱周围的Li-O-2键并显着降低界面处的Li +解吸能。我们的研究有助于开发一种新型催化剂,以增强锂空气电池中的氧气析出反应(OER)。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号