The ability to obtain 3D polymeric objects by a 2D-to-3D shape-shifting method is very appealing for polymer integration with different materials, from metals in electronic devices to cells in biological studies. Such functional reshaping can be achieved through self-folding driven by a strain pattern designed into the molecular network. Among polymeric materials, liquid crystalline networks (LCNs) present an anisotropic molecular structure that can be exploited to tailor internal strain, resulting in a natural non-planar geometry when prepared in the form of flat films. In this article, we analyze the influence of different molecular parameters of the monomers on the spontaneous shape of the polymeric films and their deformation under diff...
Films of liquid-crystal networks with a splayed molecular alignment over their cross-section display...
Liquid crystalline polymers (LCP) have attracted recent interest due to their ability to combine the...
Smart materials adapt to, rather than resist, changes to their environment. In Nature, a variety of ...
The ability to obtain 3D polymeric objects by a 2D-to-3D shape-shifting method is very appealing for...
The ability to obtain 3D polymeric objects by a 2D-to-3D shape-shifting method is very appealing for...
Well-defined gradients in molecular alignment have been used as tools to generate large amplitude, l...
\u3cp\u3eLiquid crystal polymer networks (LCNs) lead the research geared toward macroscopic motion o...
In-situ photopolymerization of liquid crystalline (LC) monomers has proven to be a valuable techniqu...
The incorporation of photoswitches and photothermal dyes into liquid-crystal polymers (LCPs) enables...
Liquid crystal polymer networks respond with anisotropic deformation to a range of external stimuli....
\u3cp\u3eA strategy based on doped liquid crystalline networks is described to create mechanical sel...
Azobenzene liquid crystal polymers offer the potential to fabricate autonomously operated actuators ...
We present polymeric MEMS materials which reversibly respond to either thermal or UV stimuli by movi...
Films of liquid-crystal networks with a splayed molecular alignment over their cross-section display...
Liquid crystalline polymers (LCP) have attracted recent interest due to their ability to combine the...
Smart materials adapt to, rather than resist, changes to their environment. In Nature, a variety of ...
The ability to obtain 3D polymeric objects by a 2D-to-3D shape-shifting method is very appealing for...
The ability to obtain 3D polymeric objects by a 2D-to-3D shape-shifting method is very appealing for...
Well-defined gradients in molecular alignment have been used as tools to generate large amplitude, l...
\u3cp\u3eLiquid crystal polymer networks (LCNs) lead the research geared toward macroscopic motion o...
In-situ photopolymerization of liquid crystalline (LC) monomers has proven to be a valuable techniqu...
The incorporation of photoswitches and photothermal dyes into liquid-crystal polymers (LCPs) enables...
Liquid crystal polymer networks respond with anisotropic deformation to a range of external stimuli....
\u3cp\u3eA strategy based on doped liquid crystalline networks is described to create mechanical sel...
Azobenzene liquid crystal polymers offer the potential to fabricate autonomously operated actuators ...
We present polymeric MEMS materials which reversibly respond to either thermal or UV stimuli by movi...
Films of liquid-crystal networks with a splayed molecular alignment over their cross-section display...
Liquid crystalline polymers (LCP) have attracted recent interest due to their ability to combine the...
Smart materials adapt to, rather than resist, changes to their environment. In Nature, a variety of ...