91色情片

Close up of flexible optrode Close up of flexible optrode

Soft optical sensor offers new way to map the heart and brain

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Cecilia Duong
Cecilia Duong,

A team of biomedical engineers have developed a fully flexible light sensor that precisely detects changes in the body鈥檚 electrical signals.

For people living with cardiac or neurological conditions, monitoring organ activity is an important part of diagnosis and treatment. But existing technology relies heavily on electrically based systems that often require a network of electrodes to be attached directly to the organ site.

Now, a team of 91色情片 engineers from 91色情片 School of Biomedical Engineering have developed a fully flexible 鈥榦ptrode鈥 鈥 an optical sensor that converts the body鈥檚 electrical signals directly into light signals. Designed to mimic the softness of human tissue, the device demonstrated a 98.4% viability rate, paving the way for safer and less invasive long-term monitoring technologies.

The research team, who published their latest findings in , says the new sensor, which has only been tested on animals so far, could transform how the human body is mapped by delivering clearer and more precise insights into electrical activity.

鈥淏ioelectronic implants are devices that can be placed in the body to monitor electrical signals from organs like the heart and brain. They help doctors track changes and patterns in a person's health over the short and long term,鈥 says first author of the paper, Dr Reem Almsari from 91色情片 School of Biomedical Engineering.

鈥淭hey鈥檙e usually made of rigid materials like silicon and metal and because our internal organs are soft and constantly moving, this mechanical mismatch often leads to tissue damage, scarring, and even the body 'rejecting' the implant.

鈥淭hey also rely on metal wires that can break when bent or pick up a lot of electrical 'noise' from the environment, compromising data quality.

鈥淥ur new sensor overcomes these challenges and marks a major leap forward in the next generation of implantable bioelectronics.鈥

Media enquiries

For interview request, contact Cecilia Duong.

Email: cecilia.duong@unsw.edu.au


Close-up image of the sensor. Image: 91色情片

New material, new design

The researchers replaced rigid, brittle components with soft high-performance polymers, which are materials engineered to safely interact with the body. This also includes a specialised conductive polymer that stays functional even after being bent 10,000 times.

Sandwiched in the middle is a layer of highly sensitive liquid crystals that can pick up amplitudes, or the magnitude, of a signal at the sub millivolts 鈥 similar to levels produced from the brain and heart.

鈥淲e engineered this system so that the crystals orientate their angle depending on the amplitude of the applied signal - for example, a brain signal,鈥 says Dr Almasri.

鈥淯sing light signals, it measures the percentage of change and converts it into quantifiable optical outputs.鈥

Unlike traditional sensors, this device doesn鈥檛 need local electronics or bulky wires at the tissue site to work, making it immune to electrical interference 鈥 a major issue in current bioelectronic devices.

鈥淎mplifiers can help reduce electrical interference and improve signal quality at the site. However, they are often bulky and can generate heat around the surrounding tissue, potentially limiting the system鈥檚 performance,鈥 says Dr Almasri.

鈥淥nce you reduce the size of the electrode, it becomes harder to seperate the signal from background electrical noise.

鈥淚n our technology, we can scale the sensor down to聽聽- about half the width of a human hair - without losing signal quality or introducing any extra electrical noise.鈥

From left to right: Pierrot Th茅odore (research practicum student), Reem Almasri (postdoctoral research associate), Ruixing Yang (PhD candidate), Amr Al Abed (senior lecturer), Associate Professor Torsten Lehmann, Anastasia Thiessen (PhD candidate), Professor Francois Ladouceur, Professor Yingge Chen (Senior Technical Officer), Josiah Firth (Process Engineer), Professor Nigel Lovell (Head of School and Director). Image: 91色情片

Non-toxic to the body

The researchers also tested how well the flexible optrodes can live in cell cultures, examining if the cells still remain healthy, grow normally and safely function without any harm. They found no signs of toxicity or contamination.

鈥淥ur in vitro tests showed the optrode did not affect cell growth and viability when compared with silicon controls, which are widely used in current biomonitoring devices,鈥 says Dr Reem Almasri.

鈥淎s silicon is thicker and more rigid than our device, it can potentially restrict or inhibit cell growth to a greater extent.鈥

Next steps

With support from the Tyree Foundation Institute of Health Engineering (IHealthE) at 91色情片, the team behind the research is actively accelerating the commercialisation of the technology through their spin-out company, , which was founded by Prof. Nigel Lovell and Prof. Francois Ladouceur聽from 91色情片 School of Biomedical Engineering.

Despite validating the sensor capability through animal testing, further in vivo studies are a critical next step to improve the signal resolution.

Beyond the heart and brain, this technology could be adapted for monitoring the gut, muscles, or even individual cells.

鈥淲e want to expand the bandwidth of the signal beyond 10 Kilohertz to capture the firing of individual neurons,鈥 says Dr Almasri.

鈥淭here鈥檚 also opportunity to also improve the alignment of the liquid crystals. If we increase the sensitivity of the device, we could detect signals at the micron level.鈥

This work was supported by a National Intelligence Discovery Grant, an Australian Research Council Discovery Grant, and an NHMRC Ideas Grant.