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Abstract
This work reports a reversible braking system for micromotors that can be controlled by small temperature changes (≈5 °C). To achieve this, gated‐mesoporous organosilica microparticles are internally loaded with metal catalysts (to form the motor) and the exterior (partially) grafted with thermosensitive bottle‐brush polyphosphazenes to form Janus particles. When placed in an aqueous solution of H2O2 (the fuel), rapid forward propulsion of the motors ensues due to decomposition of the fuel. Conformational changes of the polymers at defined temperatures regulate the bubble formation rate and thus act as brakes with considerable deceleration/acceleration observed. As the components can be easily varied, this represents a versatile, modular platform for the exogenous velocity control of micromotors.
| Originalsprache | Englisch |
|---|---|
| Seiten (von - bis) | 3262-3267 |
| Seitenumfang | 6 |
| Fachzeitschrift | Chemistry - A European Journal |
| Volume | 27 |
| Ausgabenummer | 10 |
| DOIs | |
| Publikationsstatus | Veröffentlicht - 15 Feb. 2021 |
Wissenschaftszweige
- 304007 Tissue Engineering
- 204002 Chemische Reaktionstechnik
- 210004 Nanomaterialien
- 104 Chemie
- 104002 Analytische Chemie
- 104011 Materialchemie
- 104014 Oberflächenchemie
- 104016 Photochemie
- 104018 Polymerchemie
- 104008 Katalyse
- 104010 Makromolekulare Chemie
- 104015 Organische Chemie
- 104019 Polymerwissenschaften
- 106002 Biochemie
- 107002 Bionik
- 301305 Medizinische Chemie
- 301207 Pharmazeutische Chemie
- 301904 Krebsforschung
- 302009 Chemotherapie
JKU-Schwerpunkte
- Sustainable Development: Responsible Technologies and Management
Projekte
- 1 Abgeschlossen
-
Christian Doppler Labor für Nanoskalige Phasenumwandlungen
Groiß, H. (Projektleiter*in)
01.01.2019 → 31.12.2025
Projekt: Geförderte Forschung › CDG - Christian Doppler Forschungsgesellschaft
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