URSO, M., M. USSIA a M. PUMERA. Breaking Polymer Chains with Self-Propelled Light-Controlled Navigable Hematite Microrobots. Advanced Functional Materials. Wrinheim: Wiley-VCH Verlag, 2021, roč. 31, č. 28, s. 2101510-2101519. ISSN 1616-301X. Dostupné z: https://dx.doi.org/10.1002/adfm.202101510.
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Základní údaje
Originální název Breaking Polymer Chains with Self-Propelled Light-Controlled Navigable Hematite Microrobots
Autoři URSO, M., M. USSIA a M. PUMERA.
Vydání Advanced Functional Materials, Wrinheim, Wiley-VCH Verlag, 2021, 1616-301X.
Další údaje
Originální jazyk angličtina
Typ výsledku Článek v odborném periodiku
Obor 10400 1.4 Chemical sciences
Stát vydavatele Německo
Utajení není předmětem státního či obchodního tajemství
WWW URL
Impakt faktor Impact factor: 19.924
Kód RIV RIV/00216224:14740/21:00124434
Organizační jednotka Středoevropský technologický institut
Doi http://dx.doi.org/10.1002/adfm.202101510
UT WoS 000645561700001
Klíčová slova anglicky iron oxides; micromotors; photocatalysis; plastics; pollutants; polymers; water purification
Štítky CF PROT, ne MU, rivok
Příznaky Mezinárodní význam, Recenzováno
Změnil Změnila: Mgr. Pavla Foltynová, Ph.D., učo 106624. Změněno: 23. 3. 2022 09:55.
Anotace
The increasing use of polymers has led to an uncontrollable accumulation of polymer waste in the environment, evidencing the urgent need for effective and definitive strategies to degrade them. Here, self-propelled light-powered magnetic field-navigable hematite/metal Janus microrobots that can actively move, capture, and degrade polymers are presented. Janus microrobots are fabricated by asymmetrically depositing different metals on hematite microspheres prepared by low-cost and large-scale chemical synthesis. All microrobots exhibit fuel-free motion capability, with light-controlled on/off switching of motion and magnetic field-controlled directionality. Higher speeds are observed for bimetallic coatings with respect to single metals. This is due to their larger mixed potential difference with hematite as indicated by Tafel measurements. As a model for polymers, the total degradation of high molecular weight polyethylene glycol is demonstrated by matrix-assisted laser desorption/ionization mass spectrometry. This result is attributed to the active motion of microrobots, enhanced electrostatic capture of polymer chains, improved charge separation at the hematite/metal interface, and catalyzed photo-Fenton reaction. This work opens the route toward the degradation of polymers and plastics in water using light.
Návaznosti
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