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揭示硬超导钽单硼化物中不寻常的刚性硼链亚结构。

Revealing the Unusual Rigid Boron Chain Substructure in Hard and Superconductive Tantalum Monoboride.

机构信息

State Key Laboratory of Superhard Materials, Jilin University, Changchun, 130012, China.

出版信息

Chemistry. 2019 Apr 1;25(19):5051-5057. doi: 10.1002/chem.201806043. Epub 2019 Mar 8.

Abstract

Poor electrical conductivity severely limits the diverse applications of high hardness materials in situations where electrical conductivities are highly desired. A "covalent metal" TaB with metallic electrical conductivity and high hardness has been fabricated by a high pressure and high temperature method. The bulk modulus, 302.0(4.9) GPa, and Vickers hardness, 21.3 GPa, approaches and even exceeds that of traditional insulating hard materials. Meanwhile, temperature-dependent electrical resistivity measurements show that TaB possesses metallic conductivity that rivals some widely-used conductors, and it will transform into a superconductor at T =7.8 K. Contrary to common understanding, the hardness of TaB is higher than that of TaB , which indicates that low boron concentration borides could be mechanically better than the higher boron concentration counterparts. Compression behavior and first principles calculations denote that the high hardness is associated with the ultra-rigid covalent boron chain substructure. The hardness of TaB with different topologies of boron substructure shows that besides incorporating higher boron content, manipulating light element backbone configurations is also critical for higher hardness amongst transition metal borides with identical boron content.

摘要

较差的导电性极大地限制了高硬度材料在需要高导电性的各种应用中的使用。通过高压高温方法制备出了具有金属导电性和高硬度的“共价金属” TaB。体弹性模量 302.0(4.9)GPa 和维氏硬度 21.3 GPa 接近甚至超过传统绝缘硬质材料。同时,温度相关电阻率测量表明 TaB 具有与一些常用导体相当的金属导电性,并且它将在 T = 7.8 K 转变为超导体。与普遍的认识相反,TaB 的硬度高于 TaB2,这表明低硼浓度的硼化物在机械性能上可能优于高硼浓度的硼化物。压缩行为和第一性原理计算表明,超高硬度与超硬共价硼链亚结构有关。具有不同硼亚结构拓扑的 TaB 的硬度表明,除了包含更高的硼含量之外,对于具有相同硼含量的过渡金属硼化物,操纵轻元素主链结构对于提高硬度也至关重要。

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