Atomic‐level insight of sulfidation‐engineered Aurivillius‐related Bi2O2SiO3 nanosheets enabling visible light low‐concentration CO2 conversion. Issue 2 (26th September 2022)
- Record Type:
- Journal Article
- Title:
- Atomic‐level insight of sulfidation‐engineered Aurivillius‐related Bi2O2SiO3 nanosheets enabling visible light low‐concentration CO2 conversion. Issue 2 (26th September 2022)
- Main Title:
- Atomic‐level insight of sulfidation‐engineered Aurivillius‐related Bi2O2SiO3 nanosheets enabling visible light low‐concentration CO2 conversion
- Authors:
- Wang, Kai
Du, Yue
Li, Yuan
Wu, Xiaoyong
Hu, Haiyan
Wang, Guohong
Xiao, Yao
Chou, Shulei
Zhang, Gaoke - Abstract:
- Abstract: Unraveling atomic‐level active sites of layered photocatalyst towards low‐concentration CO2 conversion is still challenging. Herein, the yield and selectivity of photocatalytic CO2 reduction of the Aurivillius‐related oxide semiconductor Bi2 O2 SiO3 nanosheet (BOSO) were largely improved using a surface sulfidation strategy. The experiment and theoretical calculation confirmed that surface sulfidation of the Bi2 O2 SiO3 nanosheet (S‐BOSO, 6.28 nm) redistributed the charge‐enriched Bi sites, extended the solar spectrum absorption to the whole visible range, and considerably enhanced the charge separation, in addition to creating new reaction active sites, as compared to pristine BOSO. Subsequently, surface sulfidation played a switchable role, wherein S‐BOSO showed a very high CH3 OH generation rate (12.78 µmol g −1 for 4 h, 78.6% selectivity) from low‐concentration CO2 (1000 ppm) under visible light irradiation, which outperforms most of the state‐of‐the‐art photocatalysts under similar conditions. This study presents an atomic‐level modification protocol for engineering reactive sites and charge behaviors to promote solar‐to‐energy conversion. Abstract : A desirable atomic‐level sulfidation strategy over an Aurivillius‐related layer‐structured photocatalyst Bi2 O2 SiO3 is demonstrated. Sulfidation‐induced reactive sites facilitate local charge separation, contributing to enhanced low‐concentration CO2 photoreduction. The system also shows feasibility in dilutedAbstract: Unraveling atomic‐level active sites of layered photocatalyst towards low‐concentration CO2 conversion is still challenging. Herein, the yield and selectivity of photocatalytic CO2 reduction of the Aurivillius‐related oxide semiconductor Bi2 O2 SiO3 nanosheet (BOSO) were largely improved using a surface sulfidation strategy. The experiment and theoretical calculation confirmed that surface sulfidation of the Bi2 O2 SiO3 nanosheet (S‐BOSO, 6.28 nm) redistributed the charge‐enriched Bi sites, extended the solar spectrum absorption to the whole visible range, and considerably enhanced the charge separation, in addition to creating new reaction active sites, as compared to pristine BOSO. Subsequently, surface sulfidation played a switchable role, wherein S‐BOSO showed a very high CH3 OH generation rate (12.78 µmol g −1 for 4 h, 78.6% selectivity) from low‐concentration CO2 (1000 ppm) under visible light irradiation, which outperforms most of the state‐of‐the‐art photocatalysts under similar conditions. This study presents an atomic‐level modification protocol for engineering reactive sites and charge behaviors to promote solar‐to‐energy conversion. Abstract : A desirable atomic‐level sulfidation strategy over an Aurivillius‐related layer‐structured photocatalyst Bi2 O2 SiO3 is demonstrated. Sulfidation‐induced reactive sites facilitate local charge separation, contributing to enhanced low‐concentration CO2 photoreduction. The system also shows feasibility in diluted CO2 conditions, typically hindered by the deficient reactive sites in conventional systems. … (more)
- Is Part Of:
- Carbon energy. Volume 5:Issue 2(2023)
- Journal:
- Carbon energy
- Issue:
- Volume 5:Issue 2(2023)
- Issue Display:
- Volume 5, Issue 2 (2023)
- Year:
- 2023
- Volume:
- 5
- Issue:
- 2
- Issue Sort Value:
- 2023-0005-0002-0000
- Page Start:
- n/a
- Page End:
- n/a
- Publication Date:
- 2022-09-26
- Subjects:
- [Bi2O2]2+ layer -- Bi2O2SiO3 -- low‐concentration CO2 reduction -- photocatalysis -- sulfidation
Carbon -- Periodicals
Carbon dioxide industry -- Periodicals
Power resources -- Research -- Periodicals
Energy industries -- Periodicals
Power resources -- Research
Energy industries
Carbon dioxide industry
Carbon
Electronic journals
Periodicals
620.193 - Journal URLs:
- https://onlinelibrary.wiley.com/journal/26379368 ↗
http://onlinelibrary.wiley.com/ ↗ - DOI:
- 10.1002/cey2.264 ↗
- Languages:
- English
- ISSNs:
- 2637-9368
- Deposit Type:
- Legaldeposit
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