Hao Yu, Peng Zhang*, Dongbao Song, Hao Chen, Peng Huang, Srđan D. Rončević and Hongwen Sun*,
{"title":"聚吡咯纳米结构涂层快速高效去除污染水中的超短链和短链PFAS。","authors":"Hao Yu, Peng Zhang*, Dongbao Song, Hao Chen, Peng Huang, Srđan D. Rončević and Hongwen Sun*, ","doi":"10.1021/acs.est.5c06248","DOIUrl":null,"url":null,"abstract":"<p >The global concern of per- and polyfluoroalkyl substance (PFAS) contamination has gradually shifted from long- to ultrashort- and short-chain PFAS, but the widely used pyrogenic carbons (PCs) are almost ineffective at removing such hydrophilic pollutants. Herein, a polypyrrole (PPy) nanostructured coating strategy was proposed to modify PCs (PPy@P-BC) for rapid and efficient removal of ultrashort- and short-chain PFAS from water. Static batch tests revealed that the sorption rate constant and sorption capacity of PFAS (C2–C6) on PPy@P-BC are at least 38 times and 5 times greater than those on undecorated PCs and benchmark materials of granular activated carbon, respectively, and their sorption equilibrium time is within 300 s. The outstanding sorption performance of PPy@P-BC is maintained in dynamic column tests (>3120 bed volumes) and different types of real water contaminated by 36 PFAS, including 11 previously identified emerging PFAS (removal >95.3%). PPy@P-BC also exhibited excellent regeneration and reusability. The following dual-drive mechanisms for PFAS removal were identified based on experimental results and density functional theory (DFT) calculations: (i) electrostatic attraction between amino functional groups (especially −NH<sup>•+</sup>−) on the nanostructured PPy coating and anionic PFAS and (ii) pore filling facilitated by the well-preserved porous structure via construction of the nanostructured coating. Overall, these results provide a promising solution to address the ultrashort- and short-chain PFAS crisis.</p>","PeriodicalId":36,"journal":{"name":"环境科学与技术","volume":"59 30","pages":"16034–16045"},"PeriodicalIF":11.3000,"publicationDate":"2025-07-21","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":"{\"title\":\"Rapid and Efficient Removal of Ultrashort- and Short-Chain PFAS from Contaminated Water by Pyrogenic Carbons: A Strategy via Polypyrrole Nanostructured Coating\",\"authors\":\"Hao Yu, Peng Zhang*, Dongbao Song, Hao Chen, Peng Huang, Srđan D. Rončević and Hongwen Sun*, \",\"doi\":\"10.1021/acs.est.5c06248\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"<p >The global concern of per- and polyfluoroalkyl substance (PFAS) contamination has gradually shifted from long- to ultrashort- and short-chain PFAS, but the widely used pyrogenic carbons (PCs) are almost ineffective at removing such hydrophilic pollutants. Herein, a polypyrrole (PPy) nanostructured coating strategy was proposed to modify PCs (PPy@P-BC) for rapid and efficient removal of ultrashort- and short-chain PFAS from water. Static batch tests revealed that the sorption rate constant and sorption capacity of PFAS (C2–C6) on PPy@P-BC are at least 38 times and 5 times greater than those on undecorated PCs and benchmark materials of granular activated carbon, respectively, and their sorption equilibrium time is within 300 s. The outstanding sorption performance of PPy@P-BC is maintained in dynamic column tests (>3120 bed volumes) and different types of real water contaminated by 36 PFAS, including 11 previously identified emerging PFAS (removal >95.3%). PPy@P-BC also exhibited excellent regeneration and reusability. The following dual-drive mechanisms for PFAS removal were identified based on experimental results and density functional theory (DFT) calculations: (i) electrostatic attraction between amino functional groups (especially −NH<sup>•+</sup>−) on the nanostructured PPy coating and anionic PFAS and (ii) pore filling facilitated by the well-preserved porous structure via construction of the nanostructured coating. 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Rapid and Efficient Removal of Ultrashort- and Short-Chain PFAS from Contaminated Water by Pyrogenic Carbons: A Strategy via Polypyrrole Nanostructured Coating
The global concern of per- and polyfluoroalkyl substance (PFAS) contamination has gradually shifted from long- to ultrashort- and short-chain PFAS, but the widely used pyrogenic carbons (PCs) are almost ineffective at removing such hydrophilic pollutants. Herein, a polypyrrole (PPy) nanostructured coating strategy was proposed to modify PCs (PPy@P-BC) for rapid and efficient removal of ultrashort- and short-chain PFAS from water. Static batch tests revealed that the sorption rate constant and sorption capacity of PFAS (C2–C6) on PPy@P-BC are at least 38 times and 5 times greater than those on undecorated PCs and benchmark materials of granular activated carbon, respectively, and their sorption equilibrium time is within 300 s. The outstanding sorption performance of PPy@P-BC is maintained in dynamic column tests (>3120 bed volumes) and different types of real water contaminated by 36 PFAS, including 11 previously identified emerging PFAS (removal >95.3%). PPy@P-BC also exhibited excellent regeneration and reusability. The following dual-drive mechanisms for PFAS removal were identified based on experimental results and density functional theory (DFT) calculations: (i) electrostatic attraction between amino functional groups (especially −NH•+−) on the nanostructured PPy coating and anionic PFAS and (ii) pore filling facilitated by the well-preserved porous structure via construction of the nanostructured coating. Overall, these results provide a promising solution to address the ultrashort- and short-chain PFAS crisis.
期刊介绍:
Environmental Science & Technology (ES&T) is a co-sponsored academic and technical magazine by the Hubei Provincial Environmental Protection Bureau and the Hubei Provincial Academy of Environmental Sciences.
Environmental Science & Technology (ES&T) holds the status of Chinese core journals, scientific papers source journals of China, Chinese Science Citation Database source journals, and Chinese Academic Journal Comprehensive Evaluation Database source journals. This publication focuses on the academic field of environmental protection, featuring articles related to environmental protection and technical advancements.