Near infrared-light responsive WS2 microengines with high-performance electro- and photo-catalytic activities.
Víctor de la Asunción-NadalBeatriz Jurado SánchezLuis VázquezAlberto EscarpaPublished in: Chemical science (2019)
Tungsten disulfide (WS2)-based micromotors with enhanced electrochemical and photo-catalytic activities are synthesized using a greatly simplified electrochemical deposition protocol at room temperature involving exclusively tungstic acid and sulfate as metal and sulfur sources without further building chemistry. The WS2-based micromotors exhibit dual electrochemical and photo-catalytic behavior in the inner and outer layers, respectively, due to the combination of the unique properties of the sp2 hybridized WS2 outer layer with highly reactive WS2-induced inner catalytic layers, accounting for this material's exclusive enhanced performances. A rough inner Pt-Ni layer allows tailoring the micromotor propulsion, with a speed increase of up to 1.6 times after external control of the micromotor with a magnetic field due to enhanced fuel accessibility. Such a coupling of the attractive capabilities of WS2 with enhanced micromotor movement holds considerable promise to address the growing energy crisis and environmental pollution concerns.
Keyphrases
- room temperature
- ionic liquid
- gold nanoparticles
- electron transfer
- randomized controlled trial
- label free
- heavy metals
- crystal structure
- risk assessment
- high glucose
- particulate matter
- drinking water
- oxidative stress
- high resolution
- diabetic rats
- machine learning
- cancer therapy
- climate change
- endothelial cells
- mass spectrometry
- oxide nanoparticles