Exploring dopant effects in stannic oxide nanoparticles for CO2 electro-reduction to formate

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作者
Young-Jin Ko
Jun-Yong Kim
Woong Hee Lee
Min Gyu Kim
Tae-Yeon Seong
Jongkil Park
YeonJoo Jeong
Byoung Koun Min
Wook-Seong Lee
Dong Ki Lee
Hyung-Suk Oh
机构
[1] Korea Institute of Science and Technology (KIST),Clean Energy Research Center
[2] Korea Institute of Science and Technology (KIST),Electronic Materials Research Center
[3] Korea University,Department of Materials Science and Engineering
[4] Pohang Accelerator Laboratory (PAL),Beamline Research Division
[5] Korea Institute of Science and Technology (KIST),Center for Neuromorphic Engineering
[6] Korea University,Graduate School of Energy and Environment (Green School)
[7] Korea University of Science and Technology,Division of Energy and Environmental Technology, KIST school
[8] Sungkyunkwan University,KIST
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The electrosynthesis of formate from CO2 can mitigate environmental issues while providing an economically valuable product. Although stannic oxide is a good catalytic material for formate production, a metallic phase is formed under high reduction overpotentials, reducing its activity. Here, using a fluorine-doped tin oxide catalyst, a high Faradaic efficiency for formate (95% at 100 mA cm−2) and a maximum partial current density of 330 mA cm−2 (at 400 mA cm−2) is achieved for the electroreduction of CO2. Furthermore, the formate selectivity (≈90%) is nearly constant over 7 days of operation at a current density of 100 mA cm−2. In-situ/operando spectroscopies reveal that the fluorine dopant plays a critical role in maintaining the high oxidation state of Sn, leading to enhanced durability at high current densities. First-principle calculation also suggests that the fluorine-doped tin oxide surface could provide a thermodynamically stable environment to form HCOO* intermediate than tin oxide surface. These findings suggest a simple and efficient approach for designing active and durable electrocatalysts for the electrosynthesis of formate from CO2.
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