波谱学杂志 ›› 2016, Vol. 33 ›› Issue (3): 361-367.doi: 10.11938/cjmr20160301
闫晓静, 胡炳文
收稿日期:
2015-03-11
修回日期:
2016-07-15
出版日期:
2016-09-05
在线发表日期:
2016-09-05
通讯作者:
胡炳文,电话:15000786783,E-mail:bwhu@phy.ecnu.edu.cn.
E-mail:bwhu@phy.ecnu.edu.cn
作者简介:
YAN Xiao-jing (1990-), female, born in Anhui province, her research focuses on NMR spectroscopy.
基金资助:
Large Instruments Open Foundation of East China Normal University, National Natural Science Foundation of China (21373086), National Science Fund of China for Excellent Young Scholars (21522303), Basic Research Project of Shanghai Science and Technology Committee (14JC1491000).
YAN Xiao-jing, HU Bing-wen
Received:
2015-03-11
Revised:
2016-07-15
Published:
2016-09-05
Online:
2016-09-05
Supported by:
Large Instruments Open Foundation of East China Normal University, National Natural Science Foundation of China (21373086), National Science Fund of China for Excellent Young Scholars (21522303), Basic Research Project of Shanghai Science and Technology Committee (14JC1491000).
摘要:
利用固体核磁共振实验研究了15N标记的g-C3N4样品中的15N-15N空间相关性,在高场和魔角旋转条件下对比两种不同的脉冲序列PDSD和SHA+的实验效果.发现当某个氮上连有质子的时候,脉冲序列SHA+比PDSD可以更好地检测15N原子间的极化转移.该研究可以为材料科学领域,特别是含氮掺杂的碳材料,提供一种有价值的研究方法.
中图分类号:
闫晓静, 胡炳文. SHA+脉冲序列用于g-C3N4样品15N-15N相关性的[J]. 波谱学杂志, 2016, 33(3): 361-367.
YAN Xiao-jing, HU Bing-wen. Probing 15N-15N Correlations in g-C3N4 Samples with Solid-State NMR SHA+ Pulse Sequence[J]. Chinese Journal of Magnetic Resonance, 2016, 33(3): 361-367.
[1] Castellani F, van Rossum B, Diehl A, et al. Structure of a protein determined by solid-state magic-angle-spinning NMR spectroscopy[J]. Nature, 2002, 420(6 911): 98-102.[2] Lange A, Becker S, Seidel K, et al. A concept for rapid protein-structure determination by solid-state NMR spectroscopy[J]. Angew Chem Int Ed Engl, 2005, 44(14): 2 089-2 092.[3] Wasmer C, Lange A, van Melckebeke H, et al. Amyloid fibrils of the HET-s (218-289) Prion form a b solenoid with a triangular hydrophobic core[J]. Science, 2008, 319(5 869): 1 523-1 526.[4] Lange A, Giller K, Hornig S, et al. Toxin-induced conformational changes in a potassium channel revealed by solid-state NMR[J]. Nature, 2006, 440(7 086): 959-962.[5] Renault M, Cukkemane A, Baldus M. Solid-state NMR spectroscopy on complex biomolecules[J]. Angew Chem Int Ed Engl, 2010, 49(45): 8 346-8 357.[6] Hong M, Zhang Y, Hu F H. Membrane protein structure and dynamics from NMR spectroscopy[J]. Annu Rev Phys Chem, 2012, 63: 1-24.[7] Tycko R. Solid-state NMR studies of amyloid fibril structure[J]. Annu Rep Phys Chem, 2011, 62: 279-299.[8] Takegoshi K, Nakamura S, Terao T. 13C-1H dipolar-assisted rotational resonance in magic-angle spinning NMR[J]. Chem Phys Lett, 2001, 344(5): 631-637.[9] Takegoshi K, Nakamura S, Terao T. 13C-1H dipolar-driven 13C-13C recoupling without 13C rf irradiation in nuclear magnetic resonance of rotating solids[J]. J Chem Phys, 2003, 118(5): 2 325-2 341.[10] Weingarth M, Masuda Y, Takegoshi K, et al. Sensitive 13C-13C correlation spectra of amyloid fibrils at very high spinning frequencies and magnetic fields[J]. J Biomol NMR, 2011, 50(2): 129-136.[11] Weingarth M, Bodenhausen G, Tekely P. Broadband carbon-13 correlation spectra of micro crystalline proteins in very high-magnetic fields[J]. J Am Chem Soc, 2009, 131(39): 13 937-13 939.[12] Weingarth M, Demco D E, Bodenhausen G, et al. Improved magnetization transfer in solid-state NMR with fast magic angle spinning[J]. Chem Phys Lett, 2009, 469(4, 5, 6): 342-348.[13] Hu B W, Lafon O, Trébosc J, et al. Broad-band homo-nuclear correlations assisted by 1H irradiation for bio-molecules in very high magnetic field at fast and ultra-fast MAS frequencies[J]. J Magn Reson, 2011, 212(2): 320-329.[14] Hu B W, Trébosc J, Lafon O, et al. Very-long-distance correlations in proteins revealed by solid-state NMR spectroscopy[J]. Chem Phys Chem, 2012, 13(16): 3 585-3 588.[15] Scholz I, van Beek J D, Ernst M. Operator-based Floquet theory in solid-state NMR[J]. Solid State Nucl Magn Reson, 2010, 37(3, 4): 39-59.[16] Leskes M, Akbey Ü, Oschkinat H, et al. Radio frequency assisted homo-nuclear recoupling, a Floquet description of homo-nuclear recoupling via surrounding hetero-nuclei in fully protonated to fully deuterated systems[J]. J Magn Reson, 2011, 209(2): 207-219.[17] Jurgens B, Irran E, Senker J, et al. Melem (2,5,8-Triamino-tri-s-triazine), an important intermediate during condensation of melamine rings to Graphitic Carbon Nitride: synthesis, structure determination by X-ray powder diffractometry, solid-state NMR, and theoretical studies[J]. J Am Chem Soc, 2003, 125(34): 10 288-10 300.[18] Bak M, Rasmussen J T, Nielsen N C. SIMPSON: A general simulation program for solid-state NMR spectroscopy[J]. J Magn Reson, 2000, 147(2): 296-330.[19] Bak M, Nielsen N C. REPULSION: A novel approach to efficient powder averaging in solid-state NMR[J]. J Magn Reson, 1997, 125(1): 132-139.[20] Fung B M, Khitrin A K, Ermolaev K. An improved broadband decoupling sequence for liquid crystals and solids[J]. J Magn Reson, 2000, 142(1): 97-101.[21] Lotsch B V, Dçblinger M, Sehnert J, et al. Unmasking melon by a complementary approach employing electron diffraction, solid-state NMR spectroscopy, and theoretical calculations; structural characterization of a carbon nitride polymer[J]. Chem Eur J, 2007, 13(17): 4 969-4 980.[22] Vosegaard T. Challenges in numerical simulations of solid-state NMR experiments: Spin exchange pulse sequences[J]. Solid State Nucl Magn Reson, 2010, 38(4): 77-83. |
[1] | 刘颖, 袁斌华, 章浩伟. 便携式磁共振多源射频脉冲发生器设计[J]. 波谱学杂志, 2025, 42(3): 285-298. |
[2] | 寇新慧, 张玉冰. 含氨基酸单元手性脲的对映体识别性能研究[J]. 波谱学杂志, 2025, 42(3): 221-230. |
[3] | 马滢雪, 赵晏强, 杨晓冬, 蒋滨, 陶诚. 我国高场及超高场磁共振成像设备研制和市场化的机遇与挑战[J]. 波谱学杂志, 2025, 42(3): 334-344. |
[4] | 江超超, 姚守权, 徐俊成, 蒋瑜. 宽频磁共振微线圈设计[J]. 波谱学杂志, 2025, 42(3): 299-307. |
[5] | 舒炜. B超和MRI在胎儿骨骼异常中的诊断价值分析[J]. 波谱学杂志, 2025, 42(3): 265-274. |
[6] | 隋美菊, 张磊, 王瑞芳, 骆盈盈, 李莎, 丘茂松, 徐秋怡, 陈代钦, 陈世桢, 周欣. MRI示踪的纳米酶用于级联反应增强的免疫治疗[J]. 波谱学杂志, 2025, 42(3): 231-248. |
[7] | 李科言, 程鑫, 陈俊飞, 曹丽, 黄臻, 刘朝阳. 用于低场NMR的低噪声前置放大器研制[J]. 波谱学杂志, 2025, 42(3): 321-333. |
[8] | 汤世豪, 杨谨毓, 徐雅洁, 王亚, 彭博文, 高宇昊, 杨晓冬. 一种用于低场磁共振波谱仪的圆极化线圈设计[J]. 波谱学杂志, 2025, 42(3): 308-320. |
[9] | 何丰丞 李明道 吕兴龙 姚守权 蒋瑜. 掌上型核磁共振谱仪控制台软件设计[J]. 波谱学杂志, 0, (): 0-0. |
[10] | 郑佳琪 王意浓 元思文 尹田鹏. 4-异丙氧基-1-(三氟乙酰基)萘的结构解析和NMR数据完整归属[J]. 波谱学杂志, 0, (): 0-0. |
[11] | 曹飞, 徐芊芊, 陈浩, 祖洁, 李晓文, 田锦, 鲍磊. 基于交叉自监督和DWI的NIID智能诊断方法[J]. 波谱学杂志, 2025, 42(2): 154-163. |
[12] | 陈博, 刘泉, 马蕾, 陈淑年, 贾亚琦, 朱斌, 郭俊旺. 基于Simulink的连续波电子顺磁共振信号处理与检测仿真研究[J]. 波谱学杂志, 2025, 42(2): 174-183. |
[13] | 顾佳佳, 王远军. 混合注意力和多尺度模块的阿尔茨海默病分类方法[J]. 波谱学杂志, 2025, 42(2): 103-116. |
[14] | 左冰玉, 石丽莉, 宋佳, 赵阳, 李倩. 雌激素、肿瘤标志物联合DCE-MRI在宫颈癌诊断及临床分期中的应用[J]. 波谱学杂志, 2025, 42(2): 164-173. |
[15] | 孟靖欣, 王远军. 基于扩散磁共振的大脑浅表白质纤维束研究进展[J]. 波谱学杂志, 2025, 42(2): 205-220. |
阅读次数 | ||||||
全文 |
|
|||||
摘要 |
|
|||||