Chinese Journal of Catalysis ›› 2022, Vol. 43 ›› Issue (8): 2026-2033.DOI: 10.1016/S1872-2067(21)63958-X
• Special column on surface & interface chemistry connecting thermo-,photo- and electro-catalysis • Previous Articles Next Articles
Yang Oua,†, Songda Lia,†, Fei Wanga, Xinyi Duanb,c, Wentao Yuana,#(), Hangsheng Yanga, Ze Zhanga, Yong Wanga,*(
)
Received:
2021-09-04
Accepted:
2021-10-12
Online:
2022-08-18
Published:
2022-06-20
Contact:
Wentao Yuan, Yong Wang
About author:
First author contact:†Contributed equally to this work.
Supported by:
Yang Ou, Songda Li, Fei Wang, Xinyi Duan, Wentao Yuan, Hangsheng Yang, Ze Zhang, Yong Wang. Reversible transformation between terrace and step sites of Pt nanoparticles on titanium under CO and O2 environments[J]. Chinese Journal of Catalysis, 2022, 43(8): 2026-2033.
Add to citation manager EndNote|Ris|BibTeX
URL: https://www.cjcatal.com/EN/10.1016/S1872-2067(21)63958-X
Fig. 1. Structural reconstruction of Pt-TiO2 catalysts under CO and O2 environments. (a-c) show the typical TEM images of one Pt nanoparticle on TiO2 truncated octahedron under O2 at elevated temperatures. (a) 573 K; (b) 673 K; (c) 773 K. The zone axis of TiO2 was near to [111] direction. The gas pressure was 1 bar with 20% O2 in Ar. (d) shows the corresponding schematic model of (a)-(c) viewed from [111] direction of TiO2. (e-g) the typical TEM images of another Pt nanoparticle on TiO2 truncated octahedron under CO at elevated temperatures. (e) 673 K. (f) 773 K. (g) 873 K. The zone axes were [010] for TiO2 and [011] for Pt NP. The gas pressure was 1 bar with 2% CO in Ar. (h) shows the corresponding schematic model of (e)-(g) viewed from [010] direction of TiO2.
Fig. 2. DFT-calculated adsorption energies for O2 and CO molecules adsorbed on various Pt terrace and step sites. Blue, red and black balls are on behalf of platinum, oxygen and carbon atoms, respectively. O2 molecules could spontaneously dissolve at {100} and {111} step sites. The corresponding adsorption energies were listed below the models.
Fig. 3. (a) Contour plot of in situ FTIR spectra of Pt-TiO2 catalysts obtained under CO adsorption at elevated temperature. The sample was pretreated by O2 environment at 573 K for 1 h. White dotted lines point out CO molecules adsorbed on terrace sites (2098-2075 cm?1) and step sites (2075-2000 cm?1). (b) Integrated area of CO molecules adsorbed on terrace and step sites, and mole ratio of CO molecules adsorbed on terrace/step sites at elevated temperatures (283-573 K).
Fig. 4. (a) In situ FTIR spectra of CO saturation adsorption obtained at 303 K, after O2 and CO treatment at 573 K under atmospheric pressure for 1 h, respectively. (b) Quantitative ratios of terrace/step sites at 303 K after gas treatments procedure according to FTIR spectra data. (c) Measured TOF of Pt-TiO2 catalysts at 303 K for CO oxidation reactions after gas treatments.
|
[1] | Shiyao Liu, Yutong Gong, Xiao Yang, Nannan Zhang, Huibin Liu, Changhai Liang, Xiao Chen. Acid-durable intermetallic CaNi2Si2 catalyst with electron-rich Ni sites for aqueous phase hydrogenation of unsaturated organic anhydrides/acids [J]. Chinese Journal of Catalysis, 2023, 50(7): 260-272. |
[2] | Hao Zhang, Yaqiong Su, Nikolay Kosinov, Emiel J. M. Hensen. Non-oxidative coupling of methane over Mo-doped CeO2 catalysts: Understanding surface and gas-phase processes [J]. Chinese Journal of Catalysis, 2023, 49(6): 68-80. |
[3] | Wenjing Zhang, Jing Li, Zidong Wei. Carbon-based catalysts of the oxygen reduction reaction: Mechanistic understanding and porous structures [J]. Chinese Journal of Catalysis, 2023, 48(5): 15-31. |
[4] | Cheng-Feng Du, Erhai Hu, Hong Yu, Qingyu Yan. Strategies for local electronic structure engineering of two-dimensional electrocatalysts [J]. Chinese Journal of Catalysis, 2023, 48(5): 1-14. |
[5] | Ping Zhang, Hao Chen, Lin Chen, Ying Xiong, Ziqi Sun, Haoyu Yang, Yingke Fu, Yaping Zhang, Ting Liao, Fei Li. Atomically dispersed Ni-N-C catalyst derived from NiZn layered double hydroxides for efficient electrochemical CO2 reduction [J]. Chinese Journal of Catalysis, 2023, 45(2): 152-161. |
[6] | Diab khalafallah, Yunxiang Zhang, Hao Wang, Jong-Min Lee, Qinfang Zhang. Energy-saving electrochemical hydrogen production via co-generative strategies in hybrid water electrolysis: Recent advances and perspectives [J]. Chinese Journal of Catalysis, 2023, 55(12): 44-115. |
[7] | Shenyu Shen, Qingfeng Guo, Tiantian Wu, Yaqiong Su. The dynamic behaviors of heterogeneous interfaces in electrocatalytic CO2 reduction [J]. Chinese Journal of Catalysis, 2023, 53(10): 52-71. |
[8] | Xianwen Zhang, Zheng Li, Taifeng Liu, Mingrun Li, Chaobin Zeng, Hiroaki Matsumoto, Hongxian Han. Water oxidation sites located at the interface of Pt/SrTiO3 for photocatalytic overall water splitting [J]. Chinese Journal of Catalysis, 2022, 43(8): 2223-2230. |
[9] | Jing Qi, Mingxing Chen, Wei Zhang, Rui Cao. Ammonium cobalt phosphate with asymmetric coordination sites for enhanced electrocatalytic water oxidation [J]. Chinese Journal of Catalysis, 2022, 43(7): 1955-1962. |
[10] | Cong Liu, Xuanhao Mei, Ce Han, Xue Gong, Ping Song, Weilin Xu. Tuning strategies and structure effects of electrocatalysts for carbon dioxide reduction reaction [J]. Chinese Journal of Catalysis, 2022, 43(7): 1618-1633. |
[11] | Wei Shen, Jing Jin, Yang Hu, Yichao Hou, Jie Yin, Zhenhui Ma, Yong-Qing Zhao, Pinxian Xi. Surface chlorine doped perovskite-type cobaltate lanthanum for water oxidation [J]. Chinese Journal of Catalysis, 2022, 43(6): 1485-1492. |
[12] | Chunpeng Wang, Zhe Wang, Shanjun Mao, Zhirong Chen, Yong Wang. Coordination environment of active sites and their effect on catalytic performance of heterogeneous catalysts [J]. Chinese Journal of Catalysis, 2022, 43(4): 928-955. |
[13] | Xiaohui Yu, Haiwei Su, Jianping Zou, Qinqin Liu, Lele Wang, Hua Tang. Doping-induced metal-N active sites and bandgap engineering in graphitic carbon nitride for enhancing photocatalytic H2 evolution performance [J]. Chinese Journal of Catalysis, 2022, 43(2): 421-432. |
[14] | Guangdong Liu, Huiqiu Deng, Jeffrey Greeley, Zhenhua Zeng. Density functional theory study of active sites and reaction mechanism of ORR on Pt surfaces under anhydrous conditions [J]. Chinese Journal of Catalysis, 2022, 43(12): 3126-3133. |
[15] | Yufei Wang, Mingyang Li, Emma Gordon, Hang Ren. Mapping the kinetics of hydrogen evolution reaction on Ag via pseudo-single-crystal scanning electrochemical cell microscopy [J]. Chinese Journal of Catalysis, 2022, 43(12): 3170-3176. |
Viewed | ||||||
Full text |
|
|||||
Abstract |
|
|||||