Novel half-integer quadrupolar solid-state NMR correlation experiments for probing atomic proximities and connectivities in disordered materials
Novel half-integer quadrupolar solid-state NMR correlation experiments for probing atomic proximities and connectivities in disordered materials
批准号:
EP/D080355/1
负责人:
Steven Brown
金额:
$21.18万
依托单位:
依托单位国家:
英国
项目类别:
Research Grant
财政年份:
2006
资助国家:
英国
项目状态:
已结题
起止时间:
2006 至 --
中文摘要
当科学家调查问题时,就像所有优秀的侦探一样,他们需要关于正在发生的事情的线索。对于一系列关键问题,能够揭示原子周围局部环境的技术对于深入了解这一水平的结构至关重要,这通常决定了材料或分子的行为。核磁共振(NMR)光谱在整个科学中的重要性越来越高,因为它是一种元素特异性探针,可以区分不同位点周围的微小变化(例如,硼原子是否与三个或四个氧原子键合,因此采用三角形或四面体排列)。核磁共振利用了原子核的固有磁性,原子核位于所有原子的中心:就像指南针在地球磁场中的排列一样,当放置在强磁场中时,核磁体具有优先方向。然而,这种偏好是弱的,并且可以使核磁体改变其方向,例如,通过施加谐振无线电波,即,其频率和能量与翻转核磁体所需的能量精确匹配。原子核周围的电子也具有固有的磁性,并受到磁场的影响。重要的是,特定原子核的共振频率非常敏感地取决于电子的这种额外响应,使得原子核充当局部电子环境的间谍,从而充当特定化学键的间谍,从而允许其用于探测如上所述的环境。不同核同位素的共振频率被很好地分离,使得NMR谱对于特定选择的同位素是特定的。(An一种元素可以以不同的同位素存在,因此原子核中的质子数相同,但中子数不同。)该项目考虑了所谓的四极核,其具有四极电子矩(即,在核中存在不均匀的电荷分布)。超过三分之二的同位素是这样的四极核,许多重要的元素,例如,锂、硼、氧、钠、铝仅具有四极NMR活性同位素。四极核通常是困难的,因为四极矩与电子产生的环境的强烈相互作用导致NMR谱中的宽线。核磁共振的一个关键优势是,原子核经历的相互作用传递了有关其周围环境的信息。作为一个例子,偶极相互作用的出现是因为核磁体不是孤立的,而是它们以类似于两个条形磁体在靠近时如何吸引或排斥的方式相互作用。一个相关的相互作用是J耦合,其中原子核之间的电子使一个原子核能够感知到与其化学键合的另一个原子核。该项目将开发适用于固体样品的新的NMR实验,这些实验使用偶极相互作用和相关的J耦合来确定四极核之间的空间邻近性或键连接性。一项好技术的检验标准是它适用于各种各样的问题。在这个项目中,新的核磁共振实验将用于确定玻璃的原子尺度结构,这些玻璃可应用于电池,牙科水泥,烤箱,望远镜镜和放射性废物固定。材料的体结构与其隐藏的原子尺度结构之间总是存在联系,因此更好地理解后者将有助于开发更好的材料。正是通过以问题为基础和以技术为基础的科学家之间的伙伴关系,才取得了真实的进展。
英文摘要
When scientists investigate problems, like all good detectives they need clues as to what is happening. For a whole range of key problems, techniques that can reveal the local environment around an atom are crucial to provide insight into the structure at this level, which often governs how a material or molecule behaves. Nuclear Magnetic Resonance (NMR) spectroscopy has increased in importance throughout the sciences as it is an element-specific probe that can distinguish very small changes in the surroundings of different sites (e.g. whether a boron atom is bonded to three or four oxygen atoms and hence adopts a trigonal or a tetrahedral arrangement). NMR exploits the inherent magnetism of atomic nuclei which are at the centre of all atoms: like the alignment of a compass needle in the Earth's magnetic field, nuclear magnets have a preferred direction when placed in a strong magnetic field. This preference, however, is weak and a nuclear magnet can be made to change its direction from, e.g., being aligned with to being aligned against the direction of the magnetic field, by applying a resonant radio wave, i.e., one whose frequency and hence energy matches precisely the energy required to flip the nuclear magnet. The electrons surrounding the atomic nucleus are also inherently magnetic and are affected by the presence of a magnetic field. Importantly, the resonant frequency of a particular nucleus depends very sensitively on this additional response of the electrons, such that the atomic nuclei act as spies of the local electron environment and hence the specific chemical bonding, allowing it to be used to probe environments as described above. The resonant frequency of different nuclear isotopes are well separated such that an NMR spectrum is specific to a particular chosen isotope. (An element can exist as different isotopes whereby there is the same number of protons but a different number of neutrons in the nucleus.) This project considers so-called quadrupolar nuclei which have a quadrupole electronic moment (i.e., there is a non-uniform distribution of electric charge in the nucleus). Over two-thirds of all isotopes are such quadrupolar nuclei, and many important elements, e.g., lithium, boron, oxygen, sodium, aluminium only have NMR-active isotopes that are quadrupolar. Quadrupolar nuclei are often difficult because the strong interaction of the quadrupole moment with the environment generated by the electrons leads to broad lines in NMR spectra. One of the key advantages for NMR is that nuclei experience interactions that convey information about their surroundings. As an example, the dipole interaction arises as the nuclear magnets are not isolated, but rather they interact in an analogous way to how two bar magnets either attract or repel when brought close together. A related interaction is the J coupling where the electrons between the nuclei enable one nucleus to sense another nucleus to which it is chemically bonded. This project will develop new NMR experiments applicable to solid samples that use dipolar interactions and related J couplings to identify through-space proximities or through-bond connectivities between quadrupolar nuclei. A test of a good technique is that it is applicable to a wide range of problems. In this project, the new NMR experiments will be used to determine the atomic-scale structure of glasses that have applications in batteries, dental cement, ovenware, telescope mirrors, and radioactive waste immobilisation. There is always a link between the bulk structure of a material and its hidden atomic-scale structure, hence a better understanding of the latter will enable better materials to be developed. It is through the partnership between problem-based and technique-based scientists that real progress is made.
期刊论文(2)
专著(0)
科研奖励(0)
会议论文
Developing 11B solid-state MAS NMR methods to characterise medium range structures in borates
开发 11B 固态 MAS NMR 方法来表征硼酸盐中的中程结构
DOI:
--
发表时间:
2009
期刊:
Eur. J. Glass Sci. Technol. B
影响因子:
--
作者:
[N/a Barrow]
通讯作者:
N/a Barrow
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