Insights into Molten Salts Induced Structural Defects in Graphitic Carbon Nitrides for Piezo‐Photocatalysis with Multiple H2O2 Production Channels

Author:

Ly Pho Phuong12,Nguyen Duc‐Viet3,Luu Tuyen Anh4,Hung Nguyen Quang56,Hue Pham Thi4,Hue Nguyen Thi Ngoc4,Pham Minh‐Thuan78,Ung Thuy Dieu Thi9,Bich Do Danh10,Phan Pham Duc Minh12,Anh Nguyen Hoai12,Toan Huynh Phuoc12,Bui Dai‐Phat11,Dao Vinh‐Ai12,Hur Seung Hyun3,Vuong Hoai‐Thanh13ORCID

Affiliation:

1. Faculty of Chemical Engineering Ho Chi Minh City University of Technology (HCMUT) 268 Ly Thuong Kiet, District 10 Ho Chi Minh City 700000 Vietnam

2. Vietnam National University Ho Chi Minh City (VNU‐HCM) Linh Trung Ward, Thu Duc City Ho Chi Minh City 700000 Vietnam

3. School of Chemical Engineering University of Ulsan Ulsan 44610 South Korea

4. Center for Nuclear Technologies Vietnam Atomic Energy Institute Ho Chi Minh City 700000 Vietnam

5. Insitute of Fundamental and Applied Sciences Duy Tan University Ho Chi Minh City 700000 Vietnam

6. Faculty of Natural Sciences Duy Tan University Da Nang City 550000 Vietnam

7. Center for Environmental Toxin and Emerging‐Contaminant Research Cheng Shiu University Kaohsiung 83347 Taiwan

8. Institute of Environmental Toxin and Emerging‐Contaminant Cheng Shiu University Kaohsiung 833301 Taiwan

9. Institute of Materials Science Vietnam Academy of Science and Technology Hanoi 100000 Vietnam

10. Department of Physics Hanoi National University of Education 136 Xuan Thuy Hanoi 100000 Vietnam

11. Advanced Materials and Application Research Group (AMA) HUTECH University 475A Dien Bien Phu Street, Ward 25, Binh Thanh District Ho Chi Minh City 700000 Vietnam

12. Department of Physics, Faculty of Applied Sciences Ho Chi Minh City University of Technology and Education Ho Chi Minh City 700000 Vietnam

13. Department of Chemistry and Biochemistry University of California Santa Barbara (UCSB) Santa Barbara CA 93106 USA

Abstract

AbstractElucidating the impact of heteroatoms in graphitic carbon nitrides (g‐C3N4) is of utmost importance to rationalize materials. Hence, in this study, oxygen‐doped g‐C3N4 containing trace amounts of halogen in the structures for piezo‐photosynthesis of hydrogen peroxides (H2O2) is fabricated. The findings reveal that oxygen atoms may be inserted into g‐C3N4 in‐plane structures, while halogen atoms tend to become intercalated between g‐C3N4 layers. Furthermore, the presence of ammonium molten salts (NH4X) during the synthesis alters the concentration of mono and cluster vacancies of carbon and nitrogen in the materials, certifying by positron annihilation spectroscopy (PAS). These defective contributions will be meaningfully accelerate catalytic performance by providing trapping states. Additionally, the decomposition of generated H2O2 can produce highly oxidative hydroxyl radicals, inducing degradations on the catalyst's structures and unexpectedly decreasing catalytic outcomes. From the mechanistic view, different reduction and oxidation channels will be play a pivotal role in generating H2O2. Moreover, the influence of ultrasound and light is also carefully investigated in the work to gain more insights into how the catalysts are triggered to improve catalytic performance. Thus, this study highlights the importance of carefully characterizing structures of g‐C3N4 to precisely understand the catalytic properties, benefiting catalytic design and development.

Funder

National Foundation for Science and Technology Development

Publisher

Wiley

Subject

General Environmental Science,Renewable Energy, Sustainability and the Environment

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