3D-printed low-voltage-driven ciliary hydrogel microactuators @mpi-is
3D-printed low-voltage-driven ciliary hydrogel microactuators  @mpi-is
Uploaded January 2026 | Updated September 2026, 3 hours ago
Scientists at the Max Planck Institute for Intelligent Systems, Hong Kong University of Science and Technology and Koç University in Istanbul have created hydrogel-based artificial cilia that move almost exactly like real biological cilia – the closest imitation achieved so far. The researchers can program each micrometer-sized cilium to move freely in space – just like cilia in the human body. With their research, the scientists aim to investigate how natural cilia function, how they coordinate their movement, and what role they play in brain development, signal perception, and fluid movement, for example. Because the artificial cilia are soft and easy to control, they could one day be used in medical devices to help people whose natural cilia are damaged or not working properly. The fast, low-voltage motion demonstrated in their study could also inspire a new generation of tiny robots that were previously impossible at such small scales. This milestone work was published in Nature on January 14, 2026.
3D-printed low-voltage-driven ciliary hydrogel microactuators2020 Intelligent Systems Summer Colloquium (Part 2)Welcome to Germany  MPI-ISWorlds first video recording of a space-time crystalArtificial Muscles for Tremor SuppressionOptimization Part II - Stephen Boyd - MLSS 2015 TübingenUnderstanding of Machine Learning Part 1 - Shai Ben David - MLSS 2017Graphical Models 3 - Christopher Bishop - MLSS 2013 TübingenFrom a real fish to a soft robotic model - a publication in Wiley’s Advanced Intelligent SystemsGaussian Processes Part I - Neil Lawrence -  MLSS 2015 TübingenThe Max Planck Institute for Intelligent SystemsLearning Theory 1 - Ingo Steinwart - MLSS 2013 Tübingen
Max Planck Institute for Intelligent Systems |

3D-printed low-voltage-driven ciliary hydrogel microactuators

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