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单晶 Al 和 N NMR 及 DFT 计算研究 AlN 中的局域电子结构。

Local Electronic Structure in AlN Studied by Single-Crystal Al and N NMR and DFT Calculations.

机构信息

Department of Chemistry, University of Munich (LMU), Butenandtstr. 5-13, 81377 Munich, Germany.

Max-Planck-Institut for Solid-State Research, Heisenbergstrasse 1, 70569 Stuttgart, Germany.

出版信息

Molecules. 2020 Jan 22;25(3):469. doi: 10.3390/molecules25030469.

Abstract

Both the chemical shift and quadrupole coupling tensors for 14 N and 27 Al in the wurtzite structure of aluminum nitride have been determined to high precision by single-crystal NMR spectroscopy. A homoepitaxially grown AlN single crystal with known morphology was used, which allowed for optical alignment of the crystal on the goniometer axis. From the analysis of the rotation patterns of 14 N ( I = 1 ) and 27 Al ( I = 5 / 2 ), the quadrupolar coupling constants were determined to χ ( 14 N ) = ( 8 . 19 ± 0 . 02 ) kHz, and χ ( 27 Al ) = ( 1 . 914 ± 0 . 001 ) MHz. The chemical shift parameters obtained from the data fit were δ i s o = - ( 292 . 6 ± 0 . 6 ) ppm and δ Δ = - ( 1 . 9 ± 1 . 1 ) ppm for 14 N, and (after correcting for the second-order quadrupolar shift) δ i s o = ( 113 . 6 ± 0 . 3 ) ppm and δ Δ = ( 12 . 7 ± 0 . 6 ) ppm for 27 Al. DFT calculations of the NMR parameters for non-optimized crystal geometries of AlN generally did not match the experimental values, whereas optimized geometries came close for 27 Al with χ ¯ calc = ( 1 . 791 ± 0 . 003 ) MHz, but not for 14 N with χ ¯ calc = - ( 19 . 5 ± 3 . 3 ) kHz.

摘要

通过单晶 NMR 光谱学,我们高精度地确定了纤锌矿结构氮化铝中 14N 和 27Al 的化学位移和四极耦合张量。我们使用了具有已知形态的同质外延生长的 AlN 单晶,这使得可以在测角仪轴上对晶体进行光学对准。通过分析 14N(I=1)和 27Al(I=5/2)的旋转模式,确定了四极耦合常数为 χ(14N)=(8.19±0.02)kHz,χ(27Al)=(1.914±0.001)MHz。从数据拟合得到的化学位移参数为 14N 的 δiso=-(292.6±0.6)ppm 和 δΔ=-(1.9±1.1)ppm,27Al 的(经二阶四极位移校正后)δiso=(113.6±0.3)ppm 和 δΔ=(12.7±0.6)ppm。对于 AlN 的非优化晶体结构的 NMR 参数的 DFT 计算通常与实验值不匹配,而优化后的几何形状则与 27Al 的 χ¯calc=(1.791±0.003)MHz 接近,但与 14N 的 χ¯calc=-(19.5±3.3)kHz 不接近。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/cd55/7037746/2a6e738aebf4/molecules-25-00469-g001.jpg

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