欢迎登录材料期刊网

材料期刊网

高级检索

粉末反应中MgB2成相过程可分三步完成:两种粉粒由于热运动接触碰撞,做反相微幅受迫振动,形成MgB2成相区;两个硼原子接近,价轨道发生sp2杂化,反应生成B2,镁原子的两个3s价电子自旋相反且成对填入B2的π轨道形成π键生成MgB2,此即MgB2初始晶核。初始晶核有不对称的电场分布和四个外露半满杂化电子轨道;初始晶核分别沿a和c三个轴六个方向接近反应,生长成单晶晶粒。晶粒表面的外露半满杂化电子轨道、镁离子和电子的局域电场可能将相邻晶粒中的晶格周期性接通,形成库伯对穿过晶粒界面的通道;不同晶面中的两种化学键可能导致两种费米分布、两种库伯对和双能隙。利用初始晶核顺磁性和晶粒表面局域电子,对成相过程可做进一步试验检验。

Phase formation process of superconductor MgB2 may be completed through three steps in powder reaction.Firstly,two kinds of powder particles contact and vibrate with opposite phase to generate phase formation region of MgB2 due to thermal motion.Secondly,two boron atoms near and react to generate B2 with sp2 hybrid obits,two valence electrons of magnesium atom fill in pair π orbit of B2 to form π bond and to generate MgB2,this is initial crystal nucleus of MgB2 with four exposed half-filled hybrid orbits and an asymmetric electric field distribution;Thirdly,initial crystal nuclei contact and react along the six directions of a-axis and c-axis to grow into crystal grains.Lattice periodicity in adjacent crystal grains may be connected by exposed half-filled hybrid orbits and local electric fields of magnesium ions and electrons on the surface of the grains to form channel of Cooper pairs penetrating the interface.Two kinds of Fermi distributions,two kinds of Cooper pairs and dual-energy gap may be formed by two kinds of chemical bonds in different crystal planes.Phase formation process could be tested by using the paramagnetism of initial crystal nucleus and spin resonance of the local electrons.

参考文献

[1] Nagamatsu,J;Nakagawa,N;Muranaka,T;Zenitani,Y;Akimitsu,J .Superconductivity at 39 K in magnesium diboride.[J].Nature,2001(6824610):63-64.
[2] 用机械合金化粉制备MgB2带[J].稀有金属快报,2003(09):16.
[3] 王明景;陈秀娟.超导体MgB2合成方法的研究现状[J].粉末冶金工业,2006(16):93-97.
[4] Kikuchi A;Iijima Y;Yoshida Y;Banno N;Takeuchi T;Inoue K .Microstructure and superconductivity of MgB2 synthesized by using Mg-based compound powders[J].Physica, C. Superconductivity and its applications,2004(Pt.2):1174-1178.
[5] Lee S .Recent advances in crystal growth of pure and chemically substituted MgB2[J].Physica, C. Superconductivity and its applications,2007(1/2):14-21.
[6] Neson Varghese;K. Vinod;Ashok Rao .Enhanced superconducting properties of bulk MgB_2 prepared by in situ Powder-In-Sealed-Tube method[J].Journal of Alloys and Compounds: An Interdisciplinary Journal of Materials Science and Solid-state Chemistry and Physics,2009(1/2):63-66.
[7] G. Liang;H. Fang;S. Guchhait et al.Effects of sintering temperature on superconductivity in Ti-sheathed MgB2 wires[J].Advances in Cryogenic Engineering,2010,56:281.
[8] G. Liang;H. Fang;D. Katz et al.Effects of TiC doping on the upper critical field of MgB2 superconduetors[J].Physiea C,2008,468:1032-1035.
[9] Sungtae Kim;Donald S. Stone;Jae-Ik Cho .Phase stability determination of the Mg-B binary system using the CALPHAD method and ab initio calculations[J].Journal of Alloys and Compounds: An Interdisciplinary Journal of Materials Science and Solid-state Chemistry and Physics,2009(1/2):85-89.
[10] 闫世成,闫果,卢亚锋,冯勇,张廷杰,张平祥,周廉.Mg-B二元系成相行为研究现状[J].稀有金属材料与工程,2006(08):1177-1181.
[11] 韩欢庆,卢惠民,邱定蕃.MgB2烧结相变的研究[J].稀有金属材料与工程,2006(10):1602-1604.
上一张 下一张
上一张 下一张
计量
  • 下载量()
  • 访问量()
文章评分
  • 您的评分:
  • 1
    0%
  • 2
    0%
  • 3
    0%
  • 4
    0%
  • 5
    0%