XPANCEO is a deep tech company that develops an invisible and weightless smart contact lens as the ultimate computing platform for the AI era.

Dubai
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🚀 XPANCEO is now a unicorn $250M Series A closed. $1.35B valuation. XPANCEO defines the new wave of billion-dollar tech leaders shaping the Middle East. This landmark round, led by Opportunity Venture (Asia), validates what we’ve believed from day one: the world is ready for a radical leap beyond screens. AI. XR. Nanomaterials. Invisible computing. All of this is five years ahead of the curve. Big Tech is still prototyping glasses. We’re already shipping the future. Read more in @business → bloomberg.com/news/articles/… #XPANCEO #Unicorn #FutureOfComputing #AI #XR #SmartContactLens #PostSmartphoneEra #DeepTech
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Every few weeks, another model arrives with better benchmarks and new capabilities, and it’s easy to assume everything else should now move at the same pace. Science and engineering are benefiting from that speed too. In materials research, AI can now suggest new materials at a scale no human team could manually explore: one recent effort produced 2.2 million candidate crystals, including around 380,000 predicted to be stable. Newer systems are also starting to build basic chemical rules into the process, so fewer proposed materials turn out to be unusable. The next challenge is finding which materials are actually useful for a specific technology. In a study published in ACS Nano, XPANCEO researchers worked with Nobel laureate Konstantin Novoselov, Chair of the company’s Scientific Advisory Board, to screen tens of thousands of computer-predicted atomically thin crystals for materials that bend light most strongly, a key property for guiding light compactly on a chip. The findings point researchers toward the material families worth testing in the lab. That experimental loop is also starting to change: at Rice University, robots will run experiments while an AI assistant learns from every result and helps choose what to test next. The pattern becomes obvious quickly: the digital part can move much faster than the physical one. In software, an idea can become code quickly, then be copied, rewritten, tested, and released as a new version almost immediately. Hardware still has to go through the real world every time: a material has to be synthesized, a component has to be fabricated, a device has to be assembled, and everything has to be tested under real conditions. So it doesn’t make much sense to judge hardware by the same clock as software. Physical experiments take longer, but they also leave something behind: data, manufacturing knowledge, better processes, and a much clearer idea of what is worth trying next. AI can help researchers decide which experiments are worth running and rule out weak directions before they reach the lab. It doesn’t remove the slower physical process, but it can make each step much more useful. Software has trained us to expect almost instant iteration, but deep tech is slower for a simple reason: at some point, you have to make the thing.
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Big congratulations to our Co-Founder and CTO, Valentyn Volkov, on winning the top prize in the Best Scientific Article category at the Palladium Global Science Award. This year, the award received more than 150 applications from researchers across 33 countries, with just five winners selected across all categories. Valentyn was recognized for his work on palladium diselenide and its potential for advanced nanophotonic and optoelectronic applications.
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Elevated intraocular pressure can damage the optic nerve and lead to vision loss, often before a person notices clear symptoms. That is why glaucoma is commonly called the “silent thief of sight.”   Our Smart Contact Lens for Glaucoma Management is designed to shift IOP monitoring from periodic measurements to proactive, continuous observation, using something as simple as a smartphone selfie.
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The goal is to make glaucoma monitoring more frequent and accessible in daily life, rather than relying only on occasional measurements during clinic visits.
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Recent upgrades include support for more iris colors, making the system more robust across varying visual conditions.
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Powering a smart contact lens is not just about making a battery smaller. The system has to remain ultra-thin, generate minimal heat, and stay safe on the eye while supporting displays, sensors, and wireless communication. Here is how we approach it.
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The lens is designed for extended autonomous operation using its microbattery. The companion device mainly handles recharging and additional functions.
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XPANCEO and ITEN have completed a proof of concept, solving key challenges in encapsulation, energy harvesting, and thermal management. The teams are now developing a custom microbattery for XPANCEO’s smart contact lens architecture.
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Glucose monitoring still needles, blood samples, or bulky wearable devices for millions of people. That's why we're exploring how the eye itself could become a health interface, with our Health Monitoring Platform for Smart Contact Lenses.
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For the 830 million people living with diabetes, and many more at risk, this could mean continuous, non-invasive monitoring — without needles or blood samples.
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The same approach could later be adapted to track other biomarkers, such as lactate, cholesterol, and others.
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