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4. Low-temperature trapping of N2 reduction reaction intermediates in nitrogenase MoFe protein–CdS quantum dot complexes.

5. Universal Free Energy Landscape Produces Efficient and Reversible Electron Bifurcation

6. A Research Road Map for Responsible Use of Agricultural Nitrogen

7. A new era for electron bifurcation

8. Homologous acetone carboxylases select Fe(II) or Mn(II) as the catalytic cofactor

11. Cryo-annealing of Photoreduced CdS Quantum Dot–Nitrogenase MoFe Protein Complexes Reveals the Kinetic Stability of the E4(2N2H) Intermediate

14. [FeFe]-Hydrogenase Maturation: Insights into the Role HydE Plays in Dithiomethylamine Biosynthesis

15. Goniometer-based femtosecond crystallography with X-ray free electron lasers

28. CHAPTER 2. Structure-function of [FeFe]- and [NiFe]-Hydrogenases: an Overview of Diversity, Mechanism, Maturation, and Bifurcation

35. The pathway for coenzyme M biosynthesis in bacteria

37. Enzymatic N2 activation: general discussion.

38. A conformational equilibrium in the nitrogenase MoFe protein with an α-V70I amino acid substitution illuminates the mechanism of H2 formation.

43. Dissecting Electronic-Structural Transitions in the Nitrogenase MoFe Protein P-Cluster during Reduction

49. A site-differentiated [4Fe–4S] cluster controls electron transfer reactivity of Clostridium acetobutylicum [FeFe]-hydrogenase I

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