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As the postsynthesis-processed metal-organic material-based catalysts for energy applications add additional cost to the whole process, the importance of developing synthesized usable pristine catalysts is quite evident. The present work reports a new Cu-based coordination polymer (Cu-CP) catalyst to be used in its pristine form for oxygen reduction reaction (ORR) application. The catalyst was characterized using single-crystal X-ray diffraction, field emission scanning electron microscopy, and X-ray photoemission spectroscopy. The Cu-CP exhibits admirable electrocatalytic ORR activity with an onset potential of 0.84 V versus RHE and a half wave potential of 0.69 V versus RHE. As revealed by the density functional theory-based computational mechanistic investigation of the electrocatalytic ORR process, the electrochemically reduced Cu(I) center binds to the molecular O through an exergonic process (Δ = -6.8 kcal/mol) and generates the Cu(II)-O superoxo intermediate. Such superoxo intermediates are frequently encountered in the catalytic cycle of the Cu-containing metalloenzymes in their O reduction reaction. This intermediate undergoes coupled proton and electron transfer processes to give OH in an alkaline medium involving HO as the intermediate. The electrocatalytic performance of Cu-CP remained stable even up to 3000 cycles. Overall, the newly developed Cu-CP-based electrocatalyst holds promising potential for efficient biomimetic ORR reactivity, which opens new possibilities toward the development of robust coordination polymer-based electrocatalysts.
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http://dx.doi.org/10.1021/acs.inorgchem.2c02755 | DOI Listing |
J Phys Chem A
September 2025
Department of Chemistry, Tsinghua University, Beijing 100084, China.
A series of Cu-based single-atom catalysts (SACs) with asymmetric coordination were designed to accelerate lithium-sulfur (Li-S) chemistry. The electronegativity contrast from the dopant induces a localized electronic asymmetry that amplifies Jahn-Teller distortion at the Cu center. This distortion profoundly modulates the Cu 3d electronic structure and its interaction with Li-S intermediates.
View Article and Find Full Text PDFInorg Chem
September 2025
State Key Laboratory of Structural Chemistry, Fujian Institute of Research on the Structure of Matter, Chinese Academy of Sciences, Fuzhou, Fujian 350002, P. R. China.
The photocatalytic reduction of carbon dioxide (CO) to chemicals holds significant importance for mitigating the current energy crisis. Rational design of catalytic centers within well-defined structures can effectively enhance the reaction activity and selectivity. In this study, we constructed interrupted zeolitic boron imidazolate frameworks (BIFs) featuring unsaturated coordination at the central Co ion.
View Article and Find Full Text PDFSmall
September 2025
School of Photovoltaic and Renewable Energy Engineering, University of New South Wales, Sydney, 2052, Australia.
Plastic waste continues to be a major environmental challenge, worsened by energy-intensive conventional recycling methods that require highly pure feedstocks. In this review, emerging electrochemical upcycling technologies are critically examined, focusing on the electro-oxidation transformation of polyethylene terephthalate (PET) into valuable chemical products. Key reaction pathways and target products are outlined to clarify the selective electrochemical reforming of PET.
View Article and Find Full Text PDFPhys Chem Chem Phys
September 2025
School of Chemical Sciences, Indian Association for the Cultivation of Science, 2A Raja S C Mullick Road, Jadavpur, Kolkata 700032, India.
This work presents a gas-phase experimental study on the reduction of NO (nitrogen dioxide) to HONO (nitrous acid) by two atmospherically significant volatile organic compounds (VOCs), namely, glycolaldehyde (Gla) and hydroxyacetone (HAc), under a simulated tropospheric condition. FTIR spectroscopic probing reveals that HONO is the only gaseous reduced product of NO in each reaction. The measured data indicate that the reactions in both cases occur in a 2 : 1 stoichiometry with respect to NO and Gla/HAc.
View Article and Find Full Text PDFAngew Chem Int Ed Engl
September 2025
Institute of Chemical Industry of Forest Products, Chinese Academy of Forestry, Nanjing, 210042, China.
Developing the efficient C─H bond activation carboxylation processes for furoic acid (FA) represents a critical technological challenge in achieving atom-economical synthesis of 2,5-furandicarboxylic acid (FDCA). Despite notable advancements in this field, the inherent contradiction between the high reactivity of furan rings and the chemical inertness of C─H bonds poses substantial technical bottleneck for achieving controllable C─H carboxylation under mild conditions. Herein, we report a high lattice-distorted MnOx catalyst with surface trench-like structures, wherein the Mn-O-conjugated configurations and electron-rich Mn cooperatively drive FA dehydrogenation and carbon radical reduction, inducing the free radical evolution process (FA→carbon-centered FA radical→FA carbanion), then coupled with solvent-polarized CO to accelerate the carboxylation process.
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