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

dc.contributor.coauthorLiu, Zemin
dc.contributor.coauthorRen, Ziyu
dc.contributor.coauthorWang, Chunxiang
dc.contributor.coauthorWang, Wenkang
dc.contributor.coauthorKo, Jongkuk
dc.contributor.coauthorSong, Shanyuan
dc.contributor.coauthorHong, Chong
dc.contributor.coauthorChen, Xi
dc.contributor.coauthorWang, Hongguang
dc.contributor.coauthorHu, Wenqi
dc.contributor.departmentSchool of Medicine
dc.contributor.kuauthorSitti, Metin
dc.contributor.kuauthorWang, Che
dc.contributor.schoolcollegeinstituteSCHOOL OF MEDICINE
dc.date.accessioned2026-02-26T07:11:15Z
dc.date.available2026-02-25
dc.date.issued2026
dc.description.abstractMicrometre-sized, densely packed natural cilia that perform non-reciprocal 3D motions with dynamically tunable collective patterns are crucial for biological processes such as microscale locomotion1, nutrient acquisition2, cell trafficking3, 4-5 and embryonic and neurological development6, 7-8. However, replicating these motions in artificial systems remains challenging given the limits of scalable, locally controllable soft-bodied actuation at the micrometre scale. Overcoming this challenge would enhance our understanding of ciliary dynamics, clarify their biological importance and enable new microscale devices and bioinspired technologies. Here we show a previously unrecognized fast electrical response of micrometre-scale hydrogels, induced by voltages down to 1.5 V without hydrolysis, with bending motions driven by ion migration across a nanometre-scale hydrogel network 3D-printed by two-photon polymerization, occurring within milliseconds. On the basis of these findings, we print gel microcilia arrays composed of a soft acrylic acid-co-acrylamide (AAc-co-AAm) hydrogel (modulus of approximately 1,000 Pa) that respond to electrical stimuli within milliseconds. Each microcilium measures 2-10 mu m in diameter and 18-90 mu m in height, achieving 3D rotational bending motion at up to 40 Hz, mirroring the geometry and dynamics of natural cilia. These gel microcilia maintain functionality after 330,000 continuous actuation cycles with less than 30% performance degradation. The gel microcilia arrays can be integrated on flexible polyimide substrates and fabricated at large scale using conventional lithography techniques. They also offer individual dynamic control by means of microelectrode arrays and enable fluid manipulation and particle transport at the micrometre scale.
dc.description.fulltextYes
dc.description.harvestedfromManual
dc.description.indexedbyWOS
dc.description.indexedbyScopus
dc.description.indexedbyPubMed
dc.description.openaccessHybrid OA
dc.description.openaccessGreen OA
dc.description.peerreviewstatusN/A
dc.description.publisherscopeInternational
dc.description.readpublishN/A
dc.description.sponsoredbyTubitakEuN/A
dc.description.sponsorshipOpen access funding provided by Max Planck Society.
dc.description.versionN/A
dc.identifier.doi10.1038/s41586-025-09944-6
dc.identifier.eissn1476-4687
dc.identifier.embargoNo
dc.identifier.endpage893
dc.identifier.issn0028-0836
dc.identifier.issue8098
dc.identifier.pubmed41535465
dc.identifier.quartileQ1
dc.identifier.scopus2-s2.0-105027526501
dc.identifier.startpage885
dc.identifier.urihttps://doi.org/10.1038/s41586-025-09944-6
dc.identifier.urihttps://hdl.handle.net/20.500.14288/32374
dc.identifier.volume649
dc.identifier.wos001661404600001
dc.keywordsMicroscale locomotion
dc.keywordsIon migration
dc.keywordsTwo-photon polymerization
dc.keywordsHydrogel networks
dc.language.isoeng
dc.publisherNature Research
dc.relation.affiliationKoç University
dc.relation.collectionKoç University Institutional Repository
dc.relation.ispartofNature
dc.relation.openaccessYes
dc.rightsCC BY-NC-ND (Attribution-NonCommercial-NoDerivs)
dc.rights.uriAttribution, Non-commercial, No Derivative Works (CC-BY-NC-ND)
dc.subjectScience and technology
dc.title3D-printed low-voltage-driven ciliary hydrogel microactuators
dc.typeJournal Article
dspace.entity.typePublication
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