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氮化硼纳米片的电子结构和自旋调控 被引量:3
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作者 王道俊 《物理学报》 SCIE EI CAS CSCD 北大核心 2013年第5期398-404,共7页
单层氮化硼纳米材料具有与石墨烯相似的原子排列方式,但是由于硼原子和氮原子之间的电荷转移,两种材料的电子特性具有较大的差异.本文采用Hubbard模型和量子力学第一性原理计算相结合的方法研究了具有氢原子饱和的锯齿型边界的三角形氮... 单层氮化硼纳米材料具有与石墨烯相似的原子排列方式,但是由于硼原子和氮原子之间的电荷转移,两种材料的电子特性具有较大的差异.本文采用Hubbard模型和量子力学第一性原理计算相结合的方法研究了具有氢原子饱和的锯齿型边界的三角形氮化硼纳米片(Nanoflake)的电子结构,发现:与相应的石墨烯纳米片不同,出现在氮化硼纳米片费米能级附近的零能态(zero-energy-states)要么被电子完全占据,要么是全空的,表现出自旋简并的特点;通过对氮化硼纳米片进行电子(或空穴)掺杂可以有效地调控"零能态"上的电子占据,进而对氮化硼纳米片的自旋进行调控.这将为氮化硼纳米材料在自旋电子学等领域的应用提供重要的理论依据. 展开更多
关键词 氮化硼纳米片 电子结构调控 HUBBARD模型 量子力学第一性原理
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Topological quantum catalyst: Dirac nodal line states and a potential electrocatalyst of hydrogen evolution in the TiSi family 被引量:6
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作者 李江旭 马会 +7 位作者 谢庆 封少波 Sami Ullah 李荣汉 董俊华 李殿中 李依依 陈星秋 《Science China Materials》 SCIE EI CSCD 2018年第1期23-29,共7页
Topological nodal line(DNL) semimetals, a closed loop of the inverted bands in its bulk phases, result in the almost flat drumhead-like non-trivial surface states(DNSSs) with an unusually high electronic density n... Topological nodal line(DNL) semimetals, a closed loop of the inverted bands in its bulk phases, result in the almost flat drumhead-like non-trivial surface states(DNSSs) with an unusually high electronic density near the Fermi level. High catalytic active sites generally associated with high electronic densities around the Fermi level, high carrier mobility and a close-to-zero free energy of the adsorbed state of hydrogen(?G_(H*)≈0) are prerequisite to design alternative of precious platinum for catalyzing electrochemical hydrogen production from water. By combining these two aspects, it is natural to consider if the DNLs are a good candidate for the hydrogen evolution reaction(HER) or not because its DNSSs provide a robust platform to activate chemical reactions. Here, through first-principles calculations we reported a new DNL TiSi-type family, exhibiting a closed Dirac nodal line due to the linear band crossings in k_y=0 plane.The hydrogen adsorbed state on the surface yields ?G_(H*) to be almost zero and the topological charge carries participate in HER. The results highlight a new routine to design topological quantum catalyst utilizing the topological DNL-induced surface bands as active sites, rather than edge sites-, vacancy-,dopant-, strain-, or heterostructure-created active sites. 展开更多
关键词 topological Dirac nodal line semimetals hydrogen evolution catalyst
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