Publication: A skin-inspired, capacitive array for tactile modulus detection via a scalable rigid-Island architecture
| dc.contributor.coauthor | Berman, A. | |
| dc.contributor.coauthor | Shi, B. | |
| dc.contributor.coauthor | Zaluska, T. | |
| dc.contributor.coauthor | Yong, A. | |
| dc.contributor.coauthor | Clees, S. | |
| dc.contributor.coauthor | Xu, C. | |
| dc.contributor.coauthor | Bao, Z. | |
| dc.contributor.department | Department of Mechanical Engineering | |
| dc.contributor.kuauthor | Beker, Levent | |
| dc.contributor.schoolcollegeinstitute | College of Engineering | |
| dc.date.accessioned | 2026-08-14T11:20:05Z | |
| dc.date.issued | 2025 | |
| dc.description.abstract | Tactile sensors that can detect material softness, or elastic modulus, are critical for intelligent robots and embodied neuroprosthetics. Artificial electronic skins (eSkins) that mimic the cutaneous stretchability and mechanosensory apparatus can facilitate human-like touch perception in these applications. Existing devices primarily rely on the piezoresistive mechanism to detect changes in pressure and lateral strain upon contact with a target object. However, resistors are highly susceptible to differences in conductive nanomaterial morphology which compromises sample-to-sample repeatability and introduces large cyclic hysteresis. Furthermore, their fabrication and interconnection complexity hinder the development of scalable, high-density arrays. Here, we overcome these limitations with a stretchable, fully capacitive sensing array that uses rigid islands in a novel architecture to obtain multimodal information. In this configuration, normal pressure is transduced to the capacitive pixels with rigid islands while free-standing pixels increase in capacitance as a function of out-of-plane deformation induced by the softness of the touched object. Electrode dimensions and layout are investigated to determine their effect on the accurate differentiation of material moduli (72 kPa to 1.36 MPa). The sensor output trend is maintained even after a five-fold miniaturization of the array sensing area from a 25 mm to a 5 mm square. Finally, the device is integrated with a dynamic robotic gripper for real-time material classification. Our unique eSkin sensor provides sophisticated feedback while minimizing data acquisition and analysis complexity, which is advantageous for efficient training of future machine learning algorithms. | |
| dc.description.harvestedfrom | Manual | |
| dc.description.indexedby | WOS | |
| dc.description.indexedby | Scopus | |
| dc.description.publisherscope | International | |
| dc.description.readpublish | N/A | |
| dc.description.sponsoredbyTubitakEu | N/A | |
| dc.description.sponsorship | National Science Foundation Graduate Research Fellowship, Grant No. DGE-1656518 (AB). Stanford Graduate Fellowship (AB). Z.B. is a Chan Zuckerberg Biohub San Francisco investigator and an Arc Institute innovation investigator. Z.B. acknowledges support from the Tianqiao and Chrissy Chen Ideation and Prototyping Lab and Stanford Wearable Electronics Initiative (eWEAR) seed funding. The authors thank Hao Lyu and Alexandra L. Ramos Figueroa for their assistance in acquiring photographs of the arrays in Figure 1f and 4d. Part of this work was performed at nano@stanford, supported by the National Science Foundation under award ECCS-2026822. | |
| dc.description.version | Published Version | |
| dc.identifier.ScopusPercentile | 98 | |
| dc.identifier.ScopusQuartile | Q1 | |
| dc.identifier.WoSPercentile | 98,2 | |
| dc.identifier.WoSQuartile | Q1 | |
| dc.identifier.doi | 10.1038/s41528-025-00503-7 | |
| dc.identifier.eissn | 2397-4621 | |
| dc.identifier.embargo | N/A | |
| dc.identifier.grantno | DGE-1656518 | |
| dc.identifier.issue | 1 | |
| dc.identifier.scopus | 2-s2.0-105027118453 | |
| dc.identifier.uri | http://doi.org/10.1038/s41528-025-00503-7 | |
| dc.identifier.uri | https://hdl.handle.net/20.500.14288/34280 | |
| dc.identifier.volume | 10 | |
| dc.identifier.wos | 001655814300001 | |
| dc.keywords | Capacitive sensing | |
| dc.keywords | Tactile sensor | |
| dc.keywords | Capacitance | |
| dc.keywords | Interconnectionpenalex | |
| dc.keywords | Miniaturization|Piezoresistive effect | |
| dc.keywords | Pressure sensor | |
| dc.keywords | Fabrication | |
| dc.keywords | Robot | |
| dc.keywords | Resistor | |
| dc.language | eng | |
| dc.publisher | Springer | |
| dc.relation.affiliation | Koç University | |
| dc.relation.collection | Koç University Institutional Repository | |
| dc.relation.ispartof | Npj Flexible Electronics | |
| dc.relation.openaccess | N/A | |
| dc.rights | N/A | |
| dc.rights.uri | N/A | |
| dc.subject | Materials science | |
| dc.subject | Mechanics | |
| dc.subject | Physics | |
| dc.title | A skin-inspired, capacitive array for tactile modulus detection via a scalable rigid-Island architecture | |
| dc.title.alternative | Ölçeklenebilir sert ada mimarisi aracılığıyla dokunsal modül tespiti için deriden esinlenmiş kapasitif dizi | |
| dc.type | Journal Article | |
| dspace.entity.type | Publication | |
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