Separation and Purification Technology, Journal Year: 2022, Volume and Issue: 304, P. 122354 - 122354
Published: Oct. 17, 2022
Language: Английский
Separation and Purification Technology, Journal Year: 2022, Volume and Issue: 304, P. 122354 - 122354
Published: Oct. 17, 2022
Language: Английский
Water Research, Journal Year: 2023, Volume and Issue: 230, P. 119574 - 119574
Published: Jan. 4, 2023
Language: Английский
Citations
93Chemical Engineering Journal, Journal Year: 2022, Volume and Issue: 454, P. 140096 - 140096
Published: Nov. 1, 2022
Language: Английский
Citations
84Advanced Functional Materials, Journal Year: 2023, Volume and Issue: 33(50)
Published: Aug. 27, 2023
Abstract Single‐atom catalysts (SACs) are desirable in environmental catalysis due to friendliness, structural stability, and maximum utilization of active metal sites. Extensive research has compared the catalytic performance between SACs with different single‐atom metals. However, their is also highly dependent on supports, which play an important role modulating local coordination environment SACs. Unfortunately, a comprehensive review that systematically discusses relationship supports environment, as well combined effects scare. In this review, three widely investigated applications including advanced oxidation processes (AOPs), mainly Fenton Fenton‐like reactions, nitrate reduction reaction (NO 3 RR) focused. By correlating characterization results, performances, computational environments reactivity examined detail, from origin pathways AOPs NO RR attempted reveal. Finally look forward for potential opportunities challenges on‐demand applications, provided.
Language: Английский
Citations
57Environmental Science & Technology, Journal Year: 2023, Volume and Issue: 57(8), P. 3334 - 3344
Published: Feb. 3, 2023
Accelerating the rate-limiting Fe3+/Fe2+ circulation in Fenton reactions through addition of reducing agents (or co-catalysts) stands out as one most promising technologies for rapid water decontamination. However, conventional such hydroxylamine and metal sulfides are greatly restricted by three intractable challenges: (1) self-quenching effects, (2) heavy dissolution, (3) irreversible capacity decline. To this end, we, first time, introduced redox-active polymers electron shuttles to expedite cycle promote H2O2 activation. The reduction Fe3+ mainly took place at active N–H or O–H bonds a proton-coupled transfer process. As carriers, H atoms solid phase could effectively inhibit radical quenching, avoid maintain long-term via facile regeneration. Experimental density functional theory (DFT) calculation results indicated that activity different shows volcano curve trend function energy barrier, highest occupied molecular orbital–lowest unoccupied orbital (HOMO–LUMO) gap, vertical ionization potential. Thanks appropriate redox ability, polyaniline outperforms other (e.g., poypyrrole, hydroquinone resin, poly(2,6-diaminopyridine), hexaazatrinaphthalene framework) with iron up 5.5 mmol/g, which corresponds state transformation from leucoemeraldine emeraldine. Moreover, proposed system exhibited high pollutant removal efficiency flow-through reactor 8000 bed volumes without an obvious decline performance. Overall, work established green sustainable oxidation system, offers great potential practical organic wastewater remediation.
Language: Английский
Citations
51Water Research, Journal Year: 2023, Volume and Issue: 246, P. 120678 - 120678
Published: Sept. 29, 2023
Language: Английский
Citations
44Coordination Chemistry Reviews, Journal Year: 2024, Volume and Issue: 509, P. 215765 - 215765
Published: March 20, 2024
Language: Английский
Citations
24ACS Catalysis, Journal Year: 2022, Volume and Issue: 12(21), P. 13334 - 13348
Published: Oct. 18, 2022
Maintaining a long-term service life of catalytic materials under the established configuration and design concept is key focus in process research development, especially for iron-functionalized cathode-based heterogeneous electro-Fenton (EF) processes operated harsh conditions. Herein, versatile robust encapsulation engineering strategy proposed based on tightly covering surface conventional cathodes with an ultrathin carbon layer to significantly improve stability composite without causing activity loss. Taking cloth-supported iron oxychloride (FeOCl/CC) as model cathode catalyst, it was successfully encapsulated reduced graphene oxide protective shell (FeOCl/CC@rGO) using electrophoretic deposition method, thereby achieving high due negligible leaching (only 0.57% FeOCl/CC), while maintaining almost unaffected electron penetration effect. Experimental analysis structure–activity relationship theoretical calculations were used establish underlying molecular mechanism penetration-triggered H2O2 activation outermost rGO. This study uses effective approach overcome activity–stability trade-off integrated EF processes, providing guidance rational high-performance structure.
Language: Английский
Citations
64Journal of Hazardous Materials, Journal Year: 2022, Volume and Issue: 435, P. 128970 - 128970
Published: April 20, 2022
Language: Английский
Citations
44Chemical Engineering Journal, Journal Year: 2022, Volume and Issue: 450, P. 138423 - 138423
Published: Aug. 2, 2022
Language: Английский
Citations
43Chemical Engineering Journal, Journal Year: 2022, Volume and Issue: 447, P. 137551 - 137551
Published: June 14, 2022
Language: Английский
Citations
40