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Enhancing Electrochemical CO2 Reduction Performance of CoII-phthalocyanine Polymer through Axial Ligand Coordination

IMPACT SIGNAL71/100
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Information from the abstract

Abstract This work presents an approach to enhance the catalytic performance of a CoII-phthalocyanine (CoPc)-based polymer for electrochemical CO2 reduction (ECO2R) by introducing a 4-dimethylaminopyridine (DMAP) axial ligand on a Co metal center. Following a previous study on 4-aminophenoxy-substituted CoPc monomer (CoPc-1) and polymer (p-CoPc-1) catalysts, a target DMAP-coordinated CoPc polymer (p-CoPc-2) was prepared by two practical routes. One included DMAP axial coordination of CoPc-1 followed by electropolymerization of the resulting CoPc-2 monomer, while the other involved DMAP treatment of a p-CoPc-1 film. Ultraviolet−visible (UV−vis) spectrophotometry, Raman spectroscopy, X-ray photoelectron spectroscopy (XPS), and X-ray absorption spectroscopy (XAS) confirmed the successful preparation of CoPc-2 and its polymer films. Results from catalytic performance evaluation revealed that the polymer from the first route (p-CoPc-2A) exhibited superior CO2-to-CO conversion performance compared to that from the second one (p-CoPc-2B). The p-CoPc-2A-catalyzed ECO2R in an H-cell at an applied potential of −1.20 V vs NHE (−0.77 V vs RHE) showed current density (jCO) and Faradaic efficiency of CO formation (FECO) of 8.13 mA·cm−2 and 99%, respectively, corresponding to a turnover frequency (TOFCO) of 2.84 s−1. At this optimal potential, p-CoPc-2A exhibited an average FECO of 96% with a turnover number (TONCO) of 4.0 × 106 over 40 h of electrolysis. In a flow cell, p-CoPc-2A showed superior catalytic performance compared to p-CoPc-1 by maintaining the average FECO of 95% and j of 167 mA·cm−2 for 25 h. Electrochemical impedance spectroscopy (EIS) and in situ XAS studies reflected a critical role of the DMAP ligand in promoting interfacial charge transfer, charge transport, and stabilization of the local coordination environment around the Co metal center during the ECO2R. Furthermore, the theoretical calculation showed the impact of the DMAP coordination in elevating the orbital energy level, lowering the free-energy barrier for *COOH intermediate formation, and stabilizing the low-spin reaction pathway.

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Why this record is monitored

This record has an Impact Signal of 71/100 based on recency, source, collaboration, and bibliographic signals. It prioritizes monitoring and is not a judgment of research quality.

Related topics: CO2 Reduction Techniques and Catalysts · Carbon dioxide utilization in catalysis · Carbon Dioxide Capture Technologies

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Thai researcher and institutional participation

Permsak Chairat · Supawadee Namuangruk‬ · Jirapong Luangchaiyaporn · Poobodin Mano · Jutarat Jitrada · Nichapat Parvilairut · Soorathep Kheawhom · Suttipong Wannapaiboon · Patchanita Thamyongkit · Chulalongkorn University · National Science and Technology Development Agency · Synchrotron Light Research Institute

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Data limitations

This page is a bibliographic record based on abstract-level information, not a full analysis or quality assessment. Verify the DOI and original article before citation.