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has not been as dramatic as in macro-scale NMR.1 This observation can be explained by considering first, the microfluidic NMR community is certainly small compared with the NMR community as a whole; and second, several technical challenges must be addressed to bring hyperpolarization to the micro-scale (material interfaces, scaling effects, integration, etc.). Nevertheless, all versions of NMR hyperpolarization have been explored at small scales.

      Figure 1.13 Photograph of a fully integrated Overhauser dynamic nuclear polarization (ODNP) probe head, designed to operate in a palm-held 0.5-T permanent magnet. [72] Sebastian Kiss (2019)/figure 05.26 [p.125]/with permission from University of Freiburg.

      1.5 Conclusions

      References

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      9 9 Chen, H.-Y., Aggarwal, R., Bok, R.A.et al. (2020). Hyperpolarized 13C-pyruvate MRI detects real-time metabolic flux in prostate cancer metastases to bone and liver: A clinical feasibility study. Prostate Cancer and Prostatic Diseases 23 (2): 269–276. doi: 10.1038/s41391-019-0180-z.

      10 10 Staudacher, T., Shi, F., Pezzagna, S.et al. (2013). Nuclear magnetic resonance spectroscopy on a (5-nanometer)3 sample volume. Science 339 (6119): 561–563. doi: 10.1126/science.1231675.

      11 11 Cho, Z.H., Ahn, C.B., Juh, S.C.et al. (1988). Nuclear magnetic resonance microscopy with 4-µm resolution: Theoretical study and experimental results. Medical

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