Ab'/> Exceptional ring topology makes diamond allotropes as light-weight superhard materials
首页> 外文期刊>Diamond and Related Materials >Exceptional ring topology makes diamond allotropes as light-weight superhard materials
【24h】

Exceptional ring topology makes diamond allotropes as light-weight superhard materials

机译:卓越的环形拓扑使金刚石偶像作为轻量级超硬材料

获取原文
获取原文并翻译 | 示例
           

摘要

AbstractRing topology (RT) is defined as minimal closed rings to characterize the connection features of given atoms so that RT can identify beyond the nearest neighbors the structures of allotropes bearing the same local bonding features, e.g. four-fold coordination in diamond-related materials. Two diamond allotropes with less common 5–8 membered ring topologies were studied by the first-principles calculations in this work. These orthorhombic carbon structures, denoted as L-PHOD andZ-PHOD carbons, respectively, are three dimensional networks connected solely viasp3hybridized CC bonds but their atoms are arranged in a non-hexagonal ring topology different from the conventional diamond. They can be constructed by superimposing Octagon-Pentagon Graphene monolayer consisting of (5–8)-membered rings connected along a straight or a zigzag path. The L-PHOD andZ-PHOD carbons are predicted to be semiconductors with indirect band gaps ~4–5eV. Compared with diamond the postulated L-PHOD and Z-PHOD carbons are ~20% softer in hardness and weaker in tensile strength but ~10% lighter in mass densities due to their larger internal channels associated with the octagon rings, implying their potential applications as light-weight superhard materials. Our work suggest that tuning the ring topology of diamond-related materials provides a design strategy to balance the mechanical properties and densities often required in the development of light-weight structure materials.Graphical abstractDisplay OmittedHighlights?Two diamond allotropes with 5–8-membered rings (PHODs) are semiconductors?PHODs are ~20% softer in hardness and weaker in tensile strength than diamond?PHODs are ~10% lighter in mass densities than diamond?PHODs are light-weight superhard carbon materials?Tuning ring topology balances mechanical property and density of carbon materials]]>
机译:<![cdata [ 抽象 环形拓扑(RT)被定义为最小的闭环,以表征给定原子的连接特征,因此RT可以识别超出最近的邻居,其具有相同的局部粘合特征的同种异体结构,例如钻石相关材料的四倍协调。通过这项工作中的第一原理计算,研究了较少常见的5-8元环形拓扑颗粒的金刚石型异形术。这些正交碳结构,表示为l-phod和 z -phod碳碳是三维网络,是仅通过 sp 3 杂交的CC键,但它们的原子布置在与传统金刚石不同的非六边形环形拓扑中。它们可以通过叠加由沿直线或Z字形路径连接的(5-8)的环形环组成的八角五角形石墨烯单层构成。 L-PHOD和 Z -Phod碳源预测是具有间接带空隙〜4-5EV的半导体。与钻石相比,假设的L-Phod和Z-Phod碳的硬度柔软〜20%,抗拉强度较弱,但由于与八角环相关的较大的内部通道,质量密度较轻〜10%,暗示其潜在的应用轻量级超硬材料。我们的工作表明,调整钻石相关材料的环形拓扑提供了一种设计策略,以平衡在轻质结构材料的开发中经常需要的机械性能和密度。 图形抽象 显示省略 突出显示 两个带5-8元环(Phods)的菱形同种形状(Phods)是半导体 phods大约10%的质量密度比钻石更轻 phod是轻量级超硬碳材料 调谐环形拓扑余额,碳材料的机械性能和密度碳材料 ]]>

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