Complementary to the quickly advancing understanding of the swimming of microorganisms, we demonstrate rather simple design principles for systems that can mimic swimming by body shape deformation. For this purpose, we developed a microswimmer that could be actuated and controlled by fast temperature changes through pulsed infrared light irradiation. The construction of the microswimmer has the following features: (i) it is a bilayer ribbon with a length of 80 or 120 $$\upmu $$m, consisting of a thermo-responsive hydrogel of poly-N-isopropylamide coated with a 2-nm layer of gold and equipped with homogeneously dispersed gold nanorods; (ii) the width of the ribbon is linearly tapered with a wider end of 5 $$\upmu $$m and a tip of 0.5 $$\upmu...
We consider the dynamics of micro-sized, asymmetrically coated thermoresponsive hydrogel ribbons (mi...
Microorganisms move in challenging environments by periodic changes in body shape. In contrast, curr...
Soft mobile microrobots whose deformation can be directly controlled by an external field can adapt ...
Complementary to the quickly advancing understanding of the swimming of microorganisms, we demonstra...
A soft microrobot composed of a microgel and driven by the light-controlled nonequilibrium dynamics ...
Self-propelling microobjects or colloids are a topical research subject for soft matter microrobots ...
The current understanding of motility through body shape deformation of micro-organisms and the know...
Self-propelling microparticles are often proposed as synthetic models for biological microswimmers, ...
We report on a microscopic poly(<i>N</i>-isopropylacrylamide) hydrogel ribbon, coated by a thin gol...
Using computational modeling, we design a microscopic swimmer made of a bilayered responsive hydroge...
Soft actuators that exhibit large deformation and can move at a fast speed in response to external s...
The locomotor behavior of creatures in nature can bring a lot of inspiration for the fabrication of ...
We consider the dynamics of micro-sized, asymmetrically coated thermoresponsive hydrogel ribbons (mi...
Microorganisms move in challenging environments by periodic changes in body shape. In contrast, curr...
Soft mobile microrobots whose deformation can be directly controlled by an external field can adapt ...
Complementary to the quickly advancing understanding of the swimming of microorganisms, we demonstra...
A soft microrobot composed of a microgel and driven by the light-controlled nonequilibrium dynamics ...
Self-propelling microobjects or colloids are a topical research subject for soft matter microrobots ...
The current understanding of motility through body shape deformation of micro-organisms and the know...
Self-propelling microparticles are often proposed as synthetic models for biological microswimmers, ...
We report on a microscopic poly(<i>N</i>-isopropylacrylamide) hydrogel ribbon, coated by a thin gol...
Using computational modeling, we design a microscopic swimmer made of a bilayered responsive hydroge...
Soft actuators that exhibit large deformation and can move at a fast speed in response to external s...
The locomotor behavior of creatures in nature can bring a lot of inspiration for the fabrication of ...
We consider the dynamics of micro-sized, asymmetrically coated thermoresponsive hydrogel ribbons (mi...
Microorganisms move in challenging environments by periodic changes in body shape. In contrast, curr...
Soft mobile microrobots whose deformation can be directly controlled by an external field can adapt ...