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A New Smart Ring Uses Finger Sweat to Track Health

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Why This Matters

This innovative smart ring leverages finger sweat to monitor biochemical markers, offering a new frontier in continuous health tracking at the molecular level. Its ability to detect substances like glucose, ketones, and uric acid without exercise broadens the potential for personalized health management and early disease detection. As a prototype, it signals a significant step toward more comprehensive, non-invasive wearable health technology for consumers and the industry alike.

Key Takeaways

Smart rings on the market measure biophysical health data, but this one focuses on biochemical metrics. David Baillot/UC San Diego Jacobs School of Engineering

Today’s smart rings use tiny built-in sensors, such as photoplethysmography light sensors, to collect biophysical data, including your heart rate and blood oxygen levels. But engineers at the University of California, San Diego, believe they have created the first smart ring that uses finger sweat to track chemical biomarkers. The ring is only a prototype, but it shows the potential for future smart rings to continuously monitor the body on a molecular level instead of relying solely on biophysical data.

In a paper published in Nature Communications on July 23, the engineering team reports that the new smart ring uses sweat to continuously monitor up to four of the following biochemical measurements: glucose, ketones, vitamin C, uric acid, lactate and alcohol concentrations. Ketones are acids produced by the liver when it breaks down fat instead of glucose. Uric acid forms when your body breaks down chemicals called purines in food and drinks, such as red meat, seafood and beer. And lactate, also known as lactic acid, is created by the body when carbohydrates are broken down for energy.

How the ring works

Study authors say you don’t have to exercise or exert yourself in order to produce the sweat required for the ring to work. Instead, the study’s first author, Tamoghna Saha, a UCSD postdoctoral researcher, developed an osmotic hydrogel, which is a soft polymer that uses a pain-free pressure gradient to pull sweat from the skin. Electrochemical sensors in the smart ring then repeatedly analyze the sweat for calibration and to create concentration values. This data is wirelessly sent to a smartphone app.

A hydrogel collects finger sweat through osmosis. David Baillot/UC San Diego Jacobs School of Engineering

What’s inside the ring

Inside the ring’s 3D‑printed polymer outer shell is an electronic board smaller than a US quarter. Its custom-built, flexible and rechargeable zinc-silver oxide battery delivers up to 12 hours of use between charges.

Considering that the Oura Ring 5 has an eight-day battery life and the Ultrahuman Ring Pro offers up to 15 days, battery life is an area where the researchers’ ring could be improved.

The intended audience

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