The electrocatalytic reduction of CO2 to value-added chemicals leads to a combined solution to address carbon dioxide emission and the demand for sustainable energy storage. Although metal catalysts have dominated and defined a benchmark in the field of electrochemical CO2 reduction (CO2RR), recent research has shifted toward the use of metal-free carbon-based catalysts. The catalytic role of metal-free polymers has remained unexplored, and they are primarily used as interfacial modifiers and electrolytes for CO2RR. The present study bridges a gap in this direction wherein a redox-active, benzoquinone-pyrrole copolymer (BQ-Py) is proposed as a durable, metal-free catalyst for CO2RR. The polymer catalyzes the reduction of CO2 to CO, HCOOH, and H2 over a potential range of -1.4 to -1.8 V vs RHE. Using operando ATR-IR spectroscopy, Raman spectroscopy, and DFT calculations, the reaction pathway to formic acid is confirmed via the formation of the *HCOO intermediate on the C atom adjacent to pyrrolic N. This study highlights the crucial role of various pyrrolic N-environments in the catalyst on product formation and its distribution through different mechanistic pathways during CO2 reduction. It further demonstrates the catalytic competency of pyrrolic-N toward electrochemical CO2 reduction. Preliminary studies reveal the possibility of integrating the polymer catalyst into rechargeable Zn-CO2 batteries.
Electrocatalytic hydrogenation (e -H) provides a sustainable route for converting unsaturated organic substrates under mild conditions using renewable electricity as the driving force. Here, we report an MOF-derived cobalt catalyst for the e -H of acetone and pyridine. A new two-dimensional cobalt metal-organic framewo...
B. K. Behera, Xin Zheng, Hao-Miao Xie et al.· Journal of the American Chem...· 0 citations
Carbon dioxide (CO2) from fossil fuel combustion drives anthropogenic climate change, and electrochemical CO2 reduction reaction (CO2RR) offers a pathway to convert this waste into valuable chemicals. However, catalytic performance is often discussed in terms of active site density alone, while the role of the local in...
T. F. da Silva, L. T. Cardoso, M. R. D. de Souza et al.· ACS Omega· 0 citations
Electrochemical water splitting suffers from sluggish kinetics of the oxygen evolution reaction (OER), leading to poor efficiency of the system. Researchers have examined the anodic oxidation of various small organic and inorganic molecules, which can be coupled with the cathodic hydrogen evolution reaction (HER). Furt...
The electrocatalytic reduction of carbon dioxide (CO2RR) into high-value-added and high-energy-density multicarbon (C2+) products hold great significance for sustainable energy conversion and carbon neutrality. However, achieving high product selectivity toward C2+ products presents a major challenge due to the complex...
Zi-Qian Shi, Long-Yun Lin, Xiang Li et al.· ACS Applied Materials and In...· 0 citations
The electrochemical nitrate reduction reaction (NO3RR) offers a sustainable route to convert waste NO3− into valuable ammonia (NH3) using renewable electricity. However, the multielectron nature of the NO3RR necessitates the use of efficient, earth-abundant catalysts. While noble metals show high activity, their scarci...
Ananda Basak, Nilmadhab Mukherjee, Supratim Ghosh et al.· Chemical Science· 0 citations
The electrochemical CO2 reduction reaction (CO2RR) offers a promising approach for converting captured CO2 into valuable chemicals and fuels. However, CO2 streams from industrial sources often contain SO2 impurities, which compromise the performance and stability of many electrocatalysts. Herein, we report the impact o...
Yiqing Wu, Chang Liu, Prajeet Oza et al.· Energy & Fuels· 0 citations
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