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Photo-illuminated diamond as a solid-state source of solvated electrons in water for nitrogen reduction

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TLDR
It is demonstrated that illuminated hydrogen-terminated diamond yields facile electron emission into water, thus inducing reduction of N₂ to NH₃ at ambient temperature and pressure.
Abstract
The photocatalytic reduction of N₂ to NH₃ is typically hampered by poor binding of N₂ to catalytic materials and by the very high energy of the intermediates involved in this reaction. Solvated electrons directly introduced into the reactant solution can provide an alternative pathway to overcome such limitations. Here we demonstrate that illuminated hydrogen-terminated diamond yields facile electron emission into water, thus inducing reduction of N₂ to NH₃ at ambient temperature and pressure. Transient absorption measurements at 632 nm reveal the presence of solvated electrons adjacent to the diamond after photoexcitation. Experiments using inexpensive synthetic diamond samples and diamond powder show that photocatalytic activity is strongly dependent on the surface termination and correlates with the production of solvated electrons. The use of diamond to eject electrons into a reactant liquid represents a new paradigm for photocatalytic reduction, bringing electrons directly to reactants without requiring molecular adsorption to the surface.

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Citations
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Journal ArticleDOI

High-efficiency electrocatalyst for N2 conversion to NH3 based on Au nanoparticles loaded on defective WO3−x

TL;DR: Further density functional theory (DFT) calculations indicate that electron transfer between the Au nanoparticles and defective WO3-x promotes the activation of N2 molecules effectively.
Journal ArticleDOI

Electrocatalysis of N2 to NH3 by HKUST-1 with High NH3 Yield.

TL;DR: It is indicated that the good performance of the HKUST-1 catalyst may originate from the formation of Cu(I), and the catalyst also has good selectivity for N2 to NH3.
Journal ArticleDOI

Cu nanoparticles decorated juncus-derived carbon for efficient electrocatalytic nitrite-to-ammonia conversion.

TL;DR: In this article , a high-active electrocatalyst for NO2-to-NH3 conversion was proposed, obtaining a high Faradaic efficiency of 93.2% and a satisfactory NH3 yield of 523.5 μmol h-1 mgcat.-1.
Journal ArticleDOI

Synergistic electrocatalytic N2 reduction using a PTCA nanorod–rGO hybrid

TL;DR: In this article, a perylene-3,4,9,10-tetracarboxylic acid nanorod-reduced graphene oxide (PTCA-rGO) nanohybrid is proposed as a metal-free electrocatalyst to synergistically enhance N2 reduction under ambient reaction conditions.
References
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Journal ArticleDOI

Electrochemical Photolysis of Water at a Semiconductor Electrode

TL;DR: Water photolysis is investigated by exploiting the fact that water is transparent to visible light and cannot be decomposed directly, but only by radiation with wavelengths shorter than 190 nm.
Journal ArticleDOI

The absolute electrode potential: an explanatory note (Recommendations 1986)

TL;DR: In this article, it is shown that in principle three reference levels can be chosen to measure an absolute value of the electrode potential, and a thermodynamic analysis of the components of the emf of an elec- trochemical cell is shown.
Journal ArticleDOI

Catalytic Reduction of Dinitrogen to Ammonia at a Single Molybdenum Center

TL;DR: In this paper, the authors explored the catalytic reduction of dinitrogen by molybdenum complexes that contain the [HIPTN3N]3- ligand.
Journal ArticleDOI

Quantum photoyield of diamond(111)—A stable negative-affinity emitter

TL;DR: In this paper, the secondary-electron energy distributions were analyzed for an unreconstructed diamond (111) surface (type-$\mathrm{II}b), gem-quality blue-white semiconductor).
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