Synthesis and characterization of aluminum diboride products using 27Al, 11B NMR and ab initio studies

被引:0
作者
Christopher L. Turner
Dimitrios Koumoulis
Gang Li
Zoran Zujovic
R. E. Taylor
Richard B. Kaner
机构
[1] University of California,Department of Chemistry and Biochemistry
[2] Los Angeles,School of Physical Science and Technology
[3] ShanghaiTech University,NMR Centre, School of Chemical Sciences
[4] University of Auckland,Department of Materials Science and Engineering and California NanoSystems Institute
[5] University of California,undefined
[6] Los Angeles,undefined
来源
Journal of Materials Science | 2018年 / 53卷
关键词
Aluminum Diboride; Nuclear Spin-lattice Relaxation; Aluminum Deficiency; Metal Borides; Saturation Recovery Data;
D O I
暂无
中图分类号
学科分类号
摘要
Understanding different bonding environments in various metal borides provides insight into their structures and physical properties. Polycrystalline aluminum diboride (AlB2) samples have been synthesized and compared both with a commercial sample and with the literature. One issue that arose is the relative ease with which boron-rich and aluminum deficient phases of aluminum borides can be presented in AlB2. Here, we report 27Al, 11B nuclear magnetic resonance (NMR) spectroscopy and first-principles calculations on AlB2 in order to shed light on these different bonding environments at the atomic level and compare the structural and electronic properties of the products of different preparations. Along with the aforementioned, the present study also takes an in-depth look at the nature of the 11B and 27Al nuclear spin–lattice relaxation recovery data for the AlB2 and other superhard materials. The nuclear spin–lattice relaxation has been measured for a static sample and with magic-angle spinning. The combination of NMR and band structure calculations highlights the synthetic challenges with superhard materials.
引用
收藏
页码:3309 / 3322
页数:13
相关论文
共 181 条
[1]  
Kayhan M(2012)Neutron diffraction and observation of superconductivity for tungsten borides, WB and W Solid State Sci 14 1656-1659
[2]  
Hildebrandt E(2014)B Acta Crystallogr C70 85-103
[3]  
Frotscher M(2013)Computational materials discovery: the case of the W–B system Appl Phys Lett 103 171903-3228
[4]  
Senyshyn A(2015)Interstitial-boron solution strengthened WB Proc Natl Acad Sci USA 112 3223-64
[5]  
Hofmann K(2001)Structure of superhard tungsten tetraboride: a missing link between MB2 and MB12 higher borides Nature 410 63-439
[6]  
Alff L(2007)Superconductivity at 39 K in magnesium diboride Science 316 436-13813
[7]  
Albert B(2015)Synthesis of ultra-incompressible superhard rhenium diboride at ambient pressure J Phys Chem C 119 13807-2907
[8]  
Cheng X-Y(2016)B and J Phys Chem C 10 2901-1320
[9]  
Chen X-Q(2017)B NMR study of elemental boron J Phys Chem C 121 1315-6568
[10]  
Li D-Z(1986)B NMR spectral and nuclear spin–lattice relaxation analyses of ReB J Am Chem Soc 108 6561-1841