Journal of Cleaner Production, Journal Year: 2023, Volume and Issue: 400, P. 136631 - 136631
Published: Feb. 27, 2023
Language: Английский
Journal of Cleaner Production, Journal Year: 2023, Volume and Issue: 400, P. 136631 - 136631
Published: Feb. 27, 2023
Language: Английский
Separation and Purification Technology, Journal Year: 2022, Volume and Issue: 295, P. 121293 - 121293
Published: May 19, 2022
Language: Английский
Citations
91Journal of Hazardous Materials, Journal Year: 2023, Volume and Issue: 449, P. 130971 - 130971
Published: Feb. 10, 2023
Language: Английский
Citations
89Chemical Engineering Journal, Journal Year: 2022, Volume and Issue: 433, P. 134467 - 134467
Published: Jan. 4, 2022
Language: Английский
Citations
88Water Research, Journal Year: 2022, Volume and Issue: 221, P. 118792 - 118792
Published: June 24, 2022
Language: Английский
Citations
76Journal of Hazardous Materials, Journal Year: 2022, Volume and Issue: 435, P. 128899 - 128899
Published: April 14, 2022
Language: Английский
Citations
71Applied Catalysis B Environment and Energy, Journal Year: 2023, Volume and Issue: 340, P. 123173 - 123173
Published: Aug. 14, 2023
Language: Английский
Citations
71Journal of environmental chemical engineering, Journal Year: 2023, Volume and Issue: 11(3), P. 109586 - 109586
Published: Feb. 28, 2023
Language: Английский
Citations
65Separation and Purification Technology, Journal Year: 2023, Volume and Issue: 330, P. 125244 - 125244
Published: Oct. 28, 2023
Language: Английский
Citations
51Chemical Engineering Journal, Journal Year: 2023, Volume and Issue: 467, P. 143339 - 143339
Published: May 4, 2023
Language: Английский
Citations
48ACS Catalysis, Journal Year: 2024, Volume and Issue: 14(10), P. 7308 - 7320
Published: April 25, 2024
The rational design and modification of heterojunction photocatalysts aimed at achieving fast charge transport efficient photocatalytic performance is a central goal solar-light-driven water splitting hydrogen evolution, yet this remains challenge. Herein, we prepare hierarchical photocatalyst composed few-layer violet phosphorene (VP), cadmium sulfide (CdS) nanoparticles (NPs), Pd single atoms (SAs) by facile one-step ball-milling strategy. underlying VP/CdS p–n heterojunctions are verified to adopt S-scheme directional transfer combining in situ irradiated X-ray photoelectron spectroscopy electron paramagnetic resonance. atomically dispersed sites the low-valence state coupled with synergistically achieve ultrafast (2.2 ps), which interfacial Pd–S Pd–P bonds serve as channels. In addition, density-functional theory calculations reveal key role enhancement light-harvesting capacity optimization proton adsorption thermodynamics. A visible-light production rate 82.5 mmol h–1 g–1 attained an optimal 1 wt % Pd–5 photocatalyst, manifests 54-fold increase respect that CdS NPs, addition apparent quantum efficiency (AQE) 25.7% 420 nm. This work showcases valid combination SAs for separation promoting others.
Language: Английский
Citations
48