- Main
Multistep catalytic abiotic CO2 conversion to sugars through C1 intermediates
- Soland, Nathan;
- Luo, Jie;
- Maulana, Arifin Luthfi;
- Feijoo, Julian;
- Jo, Hye-Jin;
- Oddo, Alexander M;
- Shan, Yu;
- Wang, Tianle;
- Lee, Geonhui;
- Choi, Jihoon;
- Huynh, Wei-Shan;
- Guzman, Maria Fonseca;
- Jayasinghe, Lihini;
- Zhu, Cheng;
- Yang, Yao;
- Yang, Peidong
Published Web Location
https://doi.org/10.1073/pnas.2514826122Abstract
Carbon dioxide (CO2) to multicarbon (Cn) upgrading for commodity chemicals, fuel production, or artificial food synthesis using renewable energy input is a golden target for researchers in sustainable carbon emission reduction. Here, we explore and analyze a flexible modular roadmap for the task, utilizing sequential electro-, photo-, and organocatalysis to develop a strategy for CO2 conversion using the key and elusive formaldehyde precursor of interest for sugar generation. We study the electrochemical carbon dioxide reduction reaction to methanol in a flow cell and its discontinuous photooxidation to formaldehyde (PMOR) with excellent selectivity. Utilizing a highly active N-heterocyclic carbene catalyst enables tunable generation of C4-C6 aldoses without undesirable byproducts, with carbon conversion yield reaching 60 to 80% for desired pentose, tetrose, and triose product mixtures and over 20% for hexose. This approach presents a roadmap for CO2 valorization, aiming to bridge carbon waste streams with sustainable sugar synthesis and opening broad avenues for green chemical production.
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