High-resolution, real-time tactile sensing is essential for robotic tasks that demand accurate, dynamic detection of contact morphology and pressure distribution, such as grasping and manipulation of delicate, slippery, or irregularly shaped objects. Existing technologies, however, face a fundamental trade-off between spatial resolution and response speed. Taxel-based sensors (e.g., capacitive, resistive, or piezoelectric) operate in real time but are intrinsically limited in resolution by taxel size, spacing, wiring, and cross-talk; even deep learning–based tactile superresolutions rarely surpass ∼1 millimeter. Finer resolutions can be achieved with vision-based tactile sensors using just a camera, although the computation required to transform raw images into three-dimensional contact maps inherently introduces latency. Here, we present mechanochromic tactile sensors that directly encode mechanical strain into spatially resolved structural colors, enabling vision-based tactile sensing with an unprecedented combination of high resolution, real-time operation, and intrinsic simplicity. The devices consist of a stretchable mech-anochromic Bragg reflector embedded between two soft silicone layers, whose thickness can be tailored to precisely map contact pressure or strain. As an example, we present topological maps of a fingertip, a one-penny coin, and a leaf, with ∼100 micrometer resolution. In comparison to the most performing vision-based tactile sensors, this was achieved without requiring any deep learning–based data enhancement and without introducing any computational latency. The straightforward applicability of this mechanochromic strategy to enhance visionbased tactile sensing in a simple yet powerful way underscores its transformative potential for uses as diverse as robotic gripping and handling, tactile product inspection, and enhanced human-robot interaction.

High-resolution real-time mechanochromic tactile sensors / Sasso, G., Pagani, A., Duncan, A.M., Pedrizzetti, G., Pugno, N., Busfield, J.J.C., Carpi, F.. - In: SCIENCE ADVANCES. - ISSN 2375-2548. - ELETTRONICO. - 12:(2026), pp. eaee5236.1-eaee5236.10. [10.1126/sciadv.aee5236]

High-resolution real-time mechanochromic tactile sensors

Sasso, Giacomo;Pagani, Alessandro;Pedrizzetti, Gianni;Carpi, Federico
2026

Abstract

High-resolution, real-time tactile sensing is essential for robotic tasks that demand accurate, dynamic detection of contact morphology and pressure distribution, such as grasping and manipulation of delicate, slippery, or irregularly shaped objects. Existing technologies, however, face a fundamental trade-off between spatial resolution and response speed. Taxel-based sensors (e.g., capacitive, resistive, or piezoelectric) operate in real time but are intrinsically limited in resolution by taxel size, spacing, wiring, and cross-talk; even deep learning–based tactile superresolutions rarely surpass ∼1 millimeter. Finer resolutions can be achieved with vision-based tactile sensors using just a camera, although the computation required to transform raw images into three-dimensional contact maps inherently introduces latency. Here, we present mechanochromic tactile sensors that directly encode mechanical strain into spatially resolved structural colors, enabling vision-based tactile sensing with an unprecedented combination of high resolution, real-time operation, and intrinsic simplicity. The devices consist of a stretchable mech-anochromic Bragg reflector embedded between two soft silicone layers, whose thickness can be tailored to precisely map contact pressure or strain. As an example, we present topological maps of a fingertip, a one-penny coin, and a leaf, with ∼100 micrometer resolution. In comparison to the most performing vision-based tactile sensors, this was achieved without requiring any deep learning–based data enhancement and without introducing any computational latency. The straightforward applicability of this mechanochromic strategy to enhance visionbased tactile sensing in a simple yet powerful way underscores its transformative potential for uses as diverse as robotic gripping and handling, tactile product inspection, and enhanced human-robot interaction.
2026
12
1
10
Goal 3: Good health and well-being
Sasso, Giacomo; Pagani, Alessandro; Duncan, Aaron M.; Pedrizzetti, Gianni; Pugno, Nicola; Busfield, James J. C.; Carpi, Federico
File in questo prodotto:
File Dimensione Formato  
High-resolution real-time mechanochromic tactile sensors.pdf

accesso aperto

Tipologia: Pdf editoriale (Version of record)
Licenza: Open Access
Dimensione 3.09 MB
Formato Adobe PDF
3.09 MB Adobe PDF

I documenti in FLORE sono protetti da copyright e tutti i diritti sono riservati, salvo diversa indicazione.

Utilizza questo identificatore per citare o creare un link a questa risorsa: https://hdl.handle.net/2158/1483032
Citazioni
  • ???jsp.display-item.citation.pmc??? ND
  • Scopus ND
  • ???jsp.display-item.citation.isi??? ND
social impact