Completed Physics & Astronomy Materials & Manufacturing

D2NP - New frontiers in electron enhanced high field solid state NMR for interdisciplinary science and technology

In plain English

AI plain-English summary

Nuclear Magnetic Resonance (NMR) signals can be boosted by a factor of up to 100,000 by harnessing unpaired electron spins—a technique called Dynamic Nuclear Polarisation (DNP)—and this project will build a new instrument to make that boost work at the high magnetic fields needed for modern solid-state analysis. NMR is a powerful detective tool for chemists and biologists, revealing the atomic-scale structure of materials by detecting tiny energy differences in atomic nuclei. Its fundamental weakness is a weak signal: the population difference between nuclear energy levels is tiny, so conventional NMR often cannot analyse small samples or dilute atoms. DNP overcomes this by transferring the much larger polarisation from unpaired electrons to nearby nuclei, but until now it has only worked at low magnetic fields. This instrument will operate at 14.1 Tesla, high enough to study quadrupolar nuclei—which make up over 75% of NMR-active nuclei—and to routinely achieve sensitivity gains of 100 to 1,000 times over conventional NMR. If successful, the technology will allow researchers to probe structures that were previously invisible: the active sites in fuel-cell catalysts, the surfaces of battery electrodes, and the molecular architecture of proteins that are too scarce for standard NMR. The same instrument can also perform world-leading pulsed electron paramagnetic resonance (EPR) experiments. This is fundamental science—it builds a new tool rather than delivering a specific product—but past advances in NMR have underpinned breakthroughs from drug discovery to materials design.

View original technical description
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. Nuclear Magnetic Resonance (NMR) spectroscopy has increased in importance as it is an element specific probe that can distinguish very small changes in the surroundings of different sites (e.g. the number of corners by which an SiO4 unit is connected into a structure) which has become important throughout the sciences. Its major drawback is the intrinsically relatively weak signal due to the small thermally derived population differences between nuclear energy levels. NMR of solids was revolutionised with the implementation of cross-polarisation that transferred magnetisation from nuclei with high magnetic moments (e.g. 1H) to more dilute nuclei with smaller magnetic moments (e.g. 13C) that yielded a factor of ~4 increase in the 13C NMR signal strength. Today there is very significant effort with a wide range of approaches to try and increase the size of the NMR signal still further and considerable investment to achieve even a few tens of percent increase. Dynamic nuclear polarisation (DNP) is a technique that uses unpaired electron spins to boost the NMR signal by as much as 100,000. Although the effect has been known from theory and experiments at low magnetic fields for sometime, it is only now that this can be put into practice, with the whole experiment carried out at high magnetic field. This is possible now because high field magnets of sufficient flexibility and robustness can be manufactured, and the production of microwaves (similar to a microwave oven although much higher frequency) at high frequencies and with sufficient power for DNP to work at up to 395 GHz is becoming feasible. This proposal seeks to bring this technology together in a new instrument to now carry out DNP at magnetic fields up to 14.1 T on solid materials and to develop the technology to use both continuous wave and pulsed DNP at these fields. Huge gains in sensitivity will result from both the DNP effect itself which in thermal equilibrium, could offer potential enhancements of the ratio of the gyromagnetic ratio of the electron to that of the nucleus, a factor of >2500 for 13C, combined with MAS operation at ~90K further increasing the enhancement via the thermal Boltzmann factor. The instrument would produce DNP at NMR frequencies much beyond those yet reported and thus allow modern high resolution solid state NMR experiments to be undertaken with gains over conventional NMR of 100-1000 routinely expected. Quadrupolar nuclei (especially those with non-integer spins), which make up >75% of the NMR-active nuclei, have largely been precluded from DNP because the nuclear resonance is too broad at current DNP magnetic (Bo) fields. This second-order quadrupolar broadening demands the use of high Bo and the instrument proposed here would have sufficiently high Bo to open up their study by DNP. The wide frequency capability of the instrument would provide new insight into the physics of high field DNP allowing, for the first time, an optimum technology to be developed in this emerging field. The versatility of the instrument proposed means that, with the same equipment, one could also carry out world-leading pulsed EPR and ENDOR experiments. The project is driven by the multidisciplinary applications in areas of huge importance as diverse as structural biology and fuel cell/electrochemistry technology. The DNP approach will allow NMR to be considered where hitherto sensitivity would have prohibited its use because of the sample size and/or the number of spins of interest are limited. The development of this technology would have an immediate and profound effect on UK research capability in a number of key areas of science and technology.

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Researchers

Julie MacPherson (Co-Investigator)Mark Newton (Co-Investigator)Mark Smith (Principal Investigator)Pat Unwin (Co-Investigator)Ray Dupree (Co-Investigator)

Related Research

Grants with similar aims, by meaning.

High-field Dynamic Nuclear Polarization Magic Angle Spinning NMR for Chemistry, Physics, Materials, Pharmaceuticals and Biomolecular Science
High Power 200 GHz Pulsed/Continuous Wave (CW) Microwave Source for Dynamic Nuclear Polarization (DNP) Spectroscopy
DNP-Enhanced Solid-state NMR: New Sample Preparation Approaches and Applications
NMR at 1.2 GHz: A World-Leading UK Facility to Deliver Advances in Biology, Chemistry, and Materials Science
Ultrafast nuclear magnetic resonance spectroscopy using parallel detection and DNP enhancement for studies of molecular dynamics

Original classification

Research Grant

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