CardioTattoo: Unlocking Continuous ECG from Commercial Smartwatches with Ultrathin Graphene Tattoos

This paper introduces CardioTattoo, a system that enables continuous ECG monitoring from commercial smartwatches using ultrathin graphene electronic tattoos. While smartwatches like the Apple Watch bring medical-grade ECG hardware to over 100 million wrists, they require users to stop, touch the crown, and wait 30 seconds for each reading—making continuous monitoring impossible. CardioTattoo overcomes this limitation through the CardioTattoo principle: rather than fighting the instability of textile-skin electrode interfaces, we relocate it to a motion-robust metal-metal junction. An imperceptible graphene tattoo (300nm thick) conforms to the skin and connects via a thin gold interconnect to a textile electrode on a garment's elastic cuff, routing the signal to the opposite wrist where the smartwatch completes the circuit. In head-to-head comparison on unmodified Apple Watches, CardioTattoo achieves 93% measurement success during walking versus 82% for manual crown touch, with around 2× tighter agreement to ground truth. Across nine daily activities with 15 participants, timing-based ECG metrics remain within clinical thresholds (20ms), and longitudinal deployment over 6-8 hours demonstrates sustained performance: >96% R-peak detection, >80% ECG availability, and 1.42ms HRV error. A formative survey (N=99) confirms user acceptance, with 84% willing to adopt an imperceptible tattoo compared to just 6% for gel electrodes or chest straps, and study participants rated the system above 8/10 across all usability dimensions, including comfort, unobtrusiveness, and willingness to wear.

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Publication Details

Journal
Proceedings of the ACM on Interactive Mobile Wearable and Ubiquitous Technologies
Published
2026-09-30
DOI
https://doi.org/10.1145/3832035
Primary Topic
Advanced Sensor and Energy Harvesting Materials
Type
article
Field-Weighted Citation Impact
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CardioTattoo: Unlocking Continuous ECG from Commercial Smartwatches with Ultrathin Graphene Tattoos

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Proceedings of the ACM on Interactive Mobile Wearable and Ubiquitous Technologies
Advanced Sensor and Energy Harvesting Materials
article

CardioTattoo: Unlocking Continuous ECG from Commercial Smartwatches with Ultrathin Graphene Tattoos

Dmitry Kireev, Zhenyu Lei, Deepak Ganesan, Phuc Le Hoang Nguyen, Sean Morris, Pritom Chowdhury
article en

Abstract

This paper introduces CardioTattoo, a system that enables continuous ECG monitoring from commercial smartwatches using ultrathin graphene electronic tattoos. While smartwatches like the Apple Watch bring medical-grade ECG hardware to over 100 million wrists, they require users to stop, touch the crown, and wait 30 seconds for each reading—making continuous monitoring impossible. CardioTattoo overcomes this limitation through the CardioTattoo principle: rather than fighting the instability of textile-skin electrode interfaces, we relocate it to a motion-robust metal-metal junction. An imperceptible graphene tattoo (300nm thick) conforms to the skin and connects via a thin gold interconnect to a textile electrode on a garment's elastic cuff, routing the signal to the opposite wrist where the smartwatch completes the circuit. In head-to-head comparison on unmodified Apple Watches, CardioTattoo achieves 93% measurement success during walking versus 82% for manual crown touch, with around 2× tighter agreement to ground truth. Across nine daily activities with 15 participants, timing-based ECG metrics remain within clinical thresholds (20ms), and longitudinal deployment over 6-8 hours demonstrates sustained performance: >96% R-peak detection, >80% ECG availability, and 1.42ms HRV error. A formative survey (N=99) confirms user acceptance, with 84% willing to adopt an imperceptible tattoo compared to just 6% for gel electrodes or chest straps, and study participants rated the system above 8/10 across all usability dimensions, including comfort, unobtrusiveness, and willingness to wear.

Proceedings of the ACM on Interactive Mobile Wearable and Ubiquitous TechnologiesVol. 10(3)
University of Massachusetts Amherst (US)
Quality Education
Openalex Percentile: Top 22%
Advanced Sensor and Energy Harvesting Materials
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