Biblio
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Dipolar recoupling in solid state NMR by phase alternating pulse sequences, , , Journal of Magnetic Resonance, vol. 197, pp. 145–152, 2009.
Dynamic Nuclear Polarization with a Rigid Biradical, , , Angewandte Chemie International Edition, vol. 48, pp. 4996–5000, 2009.
Structure of the Nucleotide Radical Formed during Reaction of CDP/TTP with the E441Q-α2β2 ofE. coliRibonucleotide Reductase, , , Journal of the American Chemical Society, vol. 131, pp. 200–211, 2009.
Structure of the Nucleotide Radical Formed during Reaction of CDP/TTP with the E441Q-α2β2 ofE. coliRibonucleotide Reductase, , , Journal of the American Chemical Society, vol. 131, pp. 200–211, 2009.
Properties of dinitroxides for use in dynamic nuclear polarization (DNP), , , Physical Chemistry Chemical Physics, vol. 12, p. 5841, 2010.
Recoupling in solid state NMR using γ prepared states and phase matching, , , Journal of Magnetic Resonance, vol. 212, pp. 402–411, 2011.
Dynamic Nuclear Polarization with a Water-Soluble Rigid Biradical, , , Journal of the American Chemical Society, vol. 134, pp. 4537–4540, 2012.
Distinct Prion Strains Are Defined by Amyloid Core Structure and Chaperone Binding Site Dynamics, , , Chemistry & Biology, vol. 21, pp. 295–305, 2014.
High Field Dynamic Nuclear Polarization NMR with Surfactant Sheltered Biradicals, , , The Journal of Physical Chemistry B, vol. 118, pp. 1825–1830, 2014.
Topical Developments in High-Field Dynamic Nuclear Polarization, , , Israel Journal of Chemistry, vol. 54, pp. 207–221, 2014.
Biosilica-Entrapped Enzymes Studied by Using Dynamic Nuclear-Polarization-Enhanced High-Field NMR Spectroscopy, , , ChemPhysChem, vol. 16, pp. 2751–2754, 2015.
Highly branched and loop-rich gels via formation of metal–organic cages linked by polymers, , , Nature Chemistry, vol. 8, pp. 33–41, 2015.
Structural Insights into Bound Water in Crystalline Amino Acids: Experimental and Theoretical17O NMR, , , The Journal of Physical Chemistry B, vol. 119, pp. 8024–8036, 2015.
Structural Insights into Bound Water in Crystalline Amino Acids: Experimental and Theoretical17O NMR, , , The Journal of Physical Chemistry B, vol. 119, pp. 8024–8036, 2015.
Zeolite Y adsorbents with high vapor uptake capacity and robust cycling stability for potential applications in advanced adsorption heat pumps, , , Microporous and Mesoporous Materials, vol. 201, pp. 151–159, 2015.
Zeolite Y adsorbents with high vapor uptake capacity and robust cycling stability for potential applications in advanced adsorption heat pumps, , , Microporous and Mesoporous Materials, vol. 201, pp. 151–159, 2015.
17O NMR Investigation of Water Structure and Dynamics, , , The Journal of Physical Chemistry B, vol. 120, pp. 7851–7858, 2016.
Gd(iii) and Mn(ii) complexes for dynamic nuclear polarization: small molecular chelate polarizing agents and applications with site-directed spin labeling of proteins, , , Phys. Chem. Chem. Phys., vol. 18, pp. 27205–27218, 2016.
Polymer Structure Dependent Hierarchy in PolyMOC Gels, , , Macromolecules, vol. 49, pp. 6896–6902, 2016.
Star PolyMOCs with Diverse Structures, Dynamics, and Functions by Three-Component Assembly, , , Angewandte Chemie, vol. 129, pp. 194–198, 2016.
17O MAS NMR Correlation Spectroscopy at High Magnetic Fields, , , Journal of the American Chemical Society, vol. 139, pp. 17953-17963, 2017.
Metal-free class Ie ribonucleotide reductase from pathogens initiates catalysis with a tyrosine-derived dihydroxyphenylalanine radical, , , Proceedings of the National Academy of Sciences, vol. 115, pp. 10022–10027, 2018.
Metal-free class Ie ribonucleotide reductase from pathogens initiates catalysis with a tyrosine-derived dihydroxyphenylalanine radical, , , Proceedings of the National Academy of Sciences, vol. 115, pp. 10022–10027, 2018.
Metal-free class Ie ribonucleotide reductase from pathogens initiates catalysis with a tyrosine-derived dihydroxyphenylalanine radical, , , Proceedings of the National Academy of Sciences, vol. 115, pp. 10022–10027, 2018.
The structure of a β2-microglobulin fibril suggests a molecular basis for its amyloid polymorphism, , , Nature Communications, vol. 9, 2018.