Charged Microdroplets as Microelectrochemical Cells for CO 2 Reduction and C-C Coupling.
Jianing DongJianxiong ChenWenxin WangZhenwei WeiZhong-Qun TianFeng-Ru FanPublished in: Journal of the American Chemical Society (2024)
Charged microdroplets offer novel electrochemical environments, distinct from traditional solid-liquid or solid-liquid-gas interfaces, due to the intense electric fields at liquid-gas interfaces. In this study, we propose that charged microdroplets serve as microelectrochemical cells (MECs), enabling unique electrochemical reactions at the gas-liquid interface. Using electrospray-generated microdroplets, we achieved multielectron CO 2 reduction and C-C coupling to synthesize ethanol using molecular catalysts. These catalysts effectively harness and relay electrons, enhancing the longevity of solvated electrons and enabling multielectron reactions. Importantly, we revealed the intrinsic relationship between the size and charge density of a MEC and its reaction selectivity. Employing in situ mass spectrometry, we identified reaction intermediates (molecular catalyst adducts with HCOO) and oxidation products, elucidating the CO 2 reduction mechanism and the comprehensive reaction procedure. Our research underscores the promising role of charged microdroplets in pioneering new electrochemical systems.
Keyphrases
- ionic liquid
- room temperature
- mass spectrometry
- electron transfer
- induced apoptosis
- gold nanoparticles
- cell cycle arrest
- liquid chromatography
- highly efficient
- molecularly imprinted
- label free
- endoplasmic reticulum stress
- signaling pathway
- high resolution
- metal organic framework
- hydrogen peroxide
- gas chromatography
- single molecule
- transition metal
- nitric oxide
- single cell
- oxidative stress
- high performance liquid chromatography