Structural defects on converted bismuth oxide nanotubes enable highly active electrocatalysis of carbon dioxide reduction

Структурные дефекты на конвертированных нанотрубках из оксида висмута обеспечивают высокоактивный электрокатализ восстановления диоксида углерода
Qiufang Gong, Pan Ding, Mingquan Xu, Xiaorong Zhu, Maoyu Wang, Jun Deng, Qing Ma, Na Han, Yong Zhu, Jun Lü, Zhenxing Feng, Yafei Li, Wu Zhou, Yanguang Li
2019-06-26

defective bismuth nanotubesdensity functional theoryelectrochemical CO2 reductionformate productionphotoelectrochemical CO2 reduction
Abstract Formic acid (or formate) is suggested to be one of the most economically viable products from electrochemical carbon dioxide reduction. However, its commercial viability hinges on the development of highly active and selective electrocatalysts. Here we report that structural defects have a profound positive impact on the electrocatalytic performance of bismuth. Bismuth oxide double-walled nanotubes with fragmented surface are prepared as a template, and are cathodically converted to defective bismuth nanotubes. This converted electrocatalyst enables carbon dioxide reduction to formate with excellent activity, selectivity and stability. Most significantly, its current density reaches ~288 mA cm −2 at −0.61 V versus reversible hydrogen electrode within a flow cell reactor under ambient conditions. Using density functional theory calculations, the excellent activity and selectivity are rationalized as the outcome of abundant defective bismuth sites that stabilize the *OCHO intermediate. Furthermore, this electrocatalyst is coupled with silicon photocathodes and achieves high-performance photoelectrochemical carbon dioxide reduction.
1
Cathodic conversion of fragmented-surface bismuth oxide double-walled nanotubes produces defective bismuth nanotubes.
2
Coupling the electrocatalyst with silicon photocathodes enables high-performance photoelectrochemical carbon dioxide reduction.
3
Density functional theory attributes the performance to abundant defective bismuth sites that stabilize the *OCHO intermediate.
4
In an ambient-condition flow cell, the catalyst reaches approximately 288 mA cm−2 at −0.61 V versus the reversible hydrogen electrode.
5
Structural defects substantially enhance the electrocatalytic performance of bismuth for carbon dioxide reduction.
6
The defective bismuth nanotubes reduce carbon dioxide to formate with high activity, selectivity, and stability.

cathodically converted defective bismuth nanotubes derived from bismuth oxide double-walled nanotubes

the electrocatalytic activity, selectivity, stability, and mechanistic role of structural defects in CO2 reduction to formate

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2019-06-26
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Qiufang Gong
Pan Ding
Mingquan Xu
Xiaorong Zhu
Maoyu Wang
Jun Deng
Qing Ma
Na Han
Yong Zhu
Jun Lü
Zhenxing Feng
Yafei Li
Wu Zhou
Yanguang Li
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