The di-copper(II) analogue, [Cu(bis-LEt)](BF) (2), of the previously reported mono-copper(II) complex [CuLEt]BF (1) which resulted in long lived electrocatalytic hydrogen evolution reaction (HER), has been prepared, characterised and tested for HER. The new bis-macrocycle, bis-HLEt, was formed from two HLEt Schiff base macrocycles (prepared by 1 + 1 condensation of 2,2'-iminobisbenzaldehyde and diethylenetriamine) being connected by selective alkylation of the less sterically hindered secondary alkyl amine group (NH) of each, using α,α'-dibromo--xylene to form a linker between them. The desired dicopper(II) complex, [Cu(bis-LEt)](BF)·4HO (2·4HO), was readily prepared, as a yellowish brown solid in 82% yield. SCXRD on yellow-brown crystals of [Cu(bis-LEt)](BF)·2MeCN (2·2MeCN) revealed both copper(II) centres are square planar with a very similar copper(II) coordination environment to that of square planar 1. Although dicopper(II) complex 2 is easier to reduce than the analogous monocopper(II) complex 1 in MeCN ((Δ): 2 -1.20(0.12) V, 1 -1.39(0.09) V, . 0.01 M AgNO/Ag), electrocatalytic HER testing of dicopper complex 2·4HO, in MeCN with 80 equivalents of acetic acid, revealed it was inactive, in stark contrast to the high and ongoing activity of 1 under the same conditions. So two is definitely not better than one metal ion in this case. Rather, it may be that the presence of an NH group in the macrocycle of 1, but absent in the bis-macrocycle of 2 (due to alkylating that NH to link the two macrocycles), may be key to the HER activity seen for 1.
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Angew Chem Int Ed Engl
January 2025
Sichuan University, School of Chemical Engineering, No.24 South Section 1, Yihuan Road, 610065, Chengdu, CHINA.
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January 2025
School of Chemistry and Chemical Engineering, Chongqing Key Laboratory of Chemical Theory and Mechanism, Chongqing University Chongqing 401331 China
Atomically precise gold nanoclusters have shown great promise as model electrocatalysts in pivotal electrocatalytic processes such as the hydrogen evolution reaction (HER) and carbon dioxide reduction reaction (CORR). Although the influence of ligands on the electronic properties of these nanoclusters is well acknowledged, the ligand effects on their electrocatalytic performances have been rarely explored. Herein, using [Au(SR)] nanoclusters as a prototype model, we demonstrated the importance of ligand hydrophilicity hydrophobicity in modulating the interface dynamics and electrocatalytic performance.
View Article and Find Full Text PDFACS Phys Chem Au
January 2025
University of Duisburg-Essen, Faculty of Chemistry, Theoretical Catalysis and Electrochemistry, Universitätsstraße 5, Essen 45141, Germany.
The direct conversion of dinitrogen to nitrate is a dream reaction to combine the Haber-Bosch and Ostwald processes as well as steam reforming using electrochemistry in a single process. Regrettably, the corresponding nitrogen oxidation (NOR) reaction is hampered by a selectivity problem, since the oxygen evolution reaction (OER) is both thermodynamically and kinetically favored in the same potential range. This opens the search for the identification of active and selective NOR catalysts to enable nitrate production under anodic reaction conditions.
View Article and Find Full Text PDFChem Commun (Camb)
January 2025
Department of Chemistry and Nanoscience, Ewha Womans University, Seoul 03760, Korea.
1,4-Dihydronicotinamide adenine dinucleotide (NADH) and its phosphate ester (NADPH) are essential cofactors required for all living cells, playing pivotal roles in multiple biological processes such as energy metabolism and biosynthesis. NADPH is produced during photosynthesis by the combination of photosystem II, where water is oxidised, and photosystem I, where NADP is reduced. This review focuses on catalytic NAD(P) (and its analogues) reduction to generate 1,4-NAD(P)H without formation of other regioisomers and the dimer.
View Article and Find Full Text PDFSmall
January 2025
School of Chemistry and Chemical Engineering, Shanghai Jiao Tong University, Shanghai, 200240, P. R. China.
Widely used catalysts for electrocatalytic hydrogen (H) evolution reaction (HER) have high platinum (Pt) contents and show low efficiencies in neutral and alkaline solutions. Herein, a carbon nanotube (CNT) supported Pt catalyst (Pt/CNT45) with 1 wt.% Pt is fabricated.
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