Projects per year
Abstract
The incorporation of an extraneous on–off braking system is necessary for the effective motion control of the next generation of micrometer‐sized motors. Here, the design and synthesis of micromotors is reported based on mesoporous silica particles containing bipyridine groups, introduced by cocondensation, for entrapping catalytic cobalt(II) ions within the mesochannels, and functionalized on the surface with silane‐derived temperature responsive bottle‐brush polyphosphazene. Switching the polymers in a narrow temperature window of 25–30 °C between the swollen and collapsed state, allows the access for the fuel H2O2 contained in the dispersion medium to cobalt(II) bipyridinato catalyst sites. The decomposition of hydrogen peroxide is monitored by optical microscopy, and effectively operated by reversibly closing or opening the pores by the grafted gate‐like polyphosphazene, to control on demand the oxygen bubble generation. This design represents one of the few examples using temperature as a trigger for the reversible on–off external switching of mesoporous silica micromotors.
| Original language | English |
|---|---|
| Article number | 1900328 |
| Number of pages | 9 |
| Journal | Macromolecular Rapid Communications |
| Issue number | 22 |
| DOIs | |
| Publication status | Published - Oct 2019 |
Fields of science
- 304007 Tissue engineering
- 204002 Chemical reaction engineering
- 210004 Nanomaterials
- 104 Chemistry
- 104002 Analytical chemistry
- 104011 Materials chemistry
- 104014 Surface chemistry
- 104016 Photochemistry
- 104018 Polymer chemistry
- 104008 Catalysis
- 104010 Macromolecular chemistry
- 104015 Organic chemistry
- 104019 Polymer sciences
- 106002 Biochemistry
- 107002 Bionics
- 301305 Medical chemistry
- 301207 Pharmaceutical chemistry
- 301904 Cancer research
- 302009 Chemotherapy
JKU Focus areas
- Sustainable Development: Responsible Technologies and Management
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Christian Doppler Laboratory for nanoscale phase transformations
Groiß, H. (PI)
01.01.2019 → 31.12.2025
Project: Funded research › Other mainly public funds
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Solare Energieumwandlung (Wittgenstein-Preis)
Sariciftci, S. N. (PI)
01.07.2012 → 30.06.2018
Project: Funded research › FWF - Austrian Science Fund