首页> 外文期刊>RSC Advances >Density-functional studies of hydrogen peroxide adsorption and dissociation on MoO3(100) and H0.33MoO3(100) surfaces
【24h】

Density-functional studies of hydrogen peroxide adsorption and dissociation on MoO3(100) and H0.33MoO3(100) surfaces

机译:MOO3(100)和H0.33MOO3(100)表面上过氧化氢吸附和解离的密度功能研究

获取原文
获取原文并翻译 | 示例
获取外文期刊封面目录资料

摘要

Hydrogen peroxide (H2O2) adsorption and dissociation mechanisms on MoO3(100) and H0.33MoO3(100) surfaces were studied by means of density-functional computations. Mechanisms were examined on both fixed and relaxed clusters. On both fixed and relaxed molybdenum oxide clusters, H2O2 adsorbs molecularly and does not dissociate. However, on the surface of both the fixed and relaxed molybdenum hydrogen bronze (H0.33MoO3) clusters, H2O2 can dissociate through a pathway involving either H-O or O-O bond cleavage. The barrier for direct H-OOH dissociation is 39.9 kJ mol(-1), leading to an adsorbed H atom and a HOO group. The dissociation of the O-O bond leads to the most energetically stable products, two OH species bound to the surface molybdenum atoms with the relative adsorption energy -430.4 kJ mol(-1). The mechanism on the relaxed cluster is slightly more complex due to additional stability of the molecularly adsorbed structure and ability to form a geminal intermediate not found on the fixed cluster. On both the relaxed and fixed clusters, hydrogen cleavage is kinetically favoured. Chemical reaction on the molybdenum hydrogen bronze surface is made possible by the increased electron density at the surface with respect to the oxide due to the contribution from the HOMO orbital.
机译:通过密度功能计算研究了MOO3(100)和H0.33MOO3(100)表面上的过氧化氢(H2O2)吸附和解离机制。在固定和放松的簇上检查机制。在固定和轻松的氧化钼簇上,H 2 O 2分子吸附并且不解离。然而,在固定和松弛的钼铜(H0.33MOO3)簇的表面上,H 2 O 2可以通过涉及H-O或O-O键切割的途径来解散。直接H-OOH解离的屏障是39.9 kJ摩尔(-1),导致吸附的H原子和HOO组。 O-O键的解离导致最具能量稳定的产物,与表面钼原子结合的两个OH物种,相对吸附能量-430.4 kJ摩尔(-1)。由于分子吸附的结构的额外稳定性和在固定簇上发现未发现的牙胎中间体的能力,松弛簇的机制稍微复杂。在缓和和固定的簇中,氢乳化作用是有利的。由于来自HOMO轨道的贡献,通过从氧化物的贡献增加,通过增加氧化钼氢青铜表面的化学反应。

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