Super bendy CPUs could pave the way for some extraordinary thinking-outside-the-box designs — Flex-RV is an open source, flexible and affordable processing unit coming to a pen near you
Traditional microprocessors, built on silicon, have seen significant performance improvements in recent years due to shrinking transistor sizes – however, expense remains a barrier for integrating such chips into disposable or flexible products.
This cost is typically driven by three main factors: the expensive silicon fabrication processes, licensing fees for proprietary instruction sets like x86, and the costs of chip packaging. Additionally, the inherent brittleness of silicon makes it unsuitable for use in flexible or wearable devices.
Pragmatic Semiconductor has addressed these issues with Flex-RV, the world’s first 32-bit microprocessor built on a flexible substrate. Flex-RV is notable not only for its flexible form based on the metal-oxide semiconductor indium gallium zinc oxide (IGZO). but also for its embedded machine learning capabilities. Developed in collaboration with Qamcom and Harvard University, it marks a major step in non-silicon microprocessors and can operate while being physically bent.
Transforming industries
“This is an exciting step forward in flexible semiconductor technology,” noted Emre Ozer, Senior Director of Processor Development at Pragmatic and the lead researcher. “Enabling an open-standard, non-silicon 32-bit microprocessor will democratise access to computing, unlocking emerging applications while opening the door to sub-dollar compute.”
Ozer highlighted how the cost and form factor have long restricted the use of microprocessors in emerging applications like smart labels, wearables, and healthcare, despite the relatively low computational demands.
Flex-RV, with its 17.5-square-millimeter core and approximately 12,600 logic gates, makes use of two key technologies: the open-source RISC-V instruction set and IGZO TFTs.
RISC-V architecture, being open-source, eliminates the costs associated with proprietary ISAs, while allowing customization for specific application needs. IGZO TFTs, on the other hand, enable microprocessor fabrication on flexible substrates, reducing production costs and the environmental impact compared to traditional silicon fabs. The chips are also more durable, as they do not require the rigid protective packaging that silicon chips do.
Sign up to the TechRadar Pro newsletter to get all the top news, opinion, features and guidance your business needs to succeed!
Pragmatic says Flex-RV has undergone extensive testing and can function reliably at clock speeds up to 60 kHz and power consumption below 6mW, even when bent to a curvature of 5mm. The technology potentially opens new possibilities for integrating computing power into flexible, disposable, and wearable devices, transforming industries such as healthcare and consumer goods.
Pragmatic Semiconductor’s latest research article has been published in Nature.
More from TechRadar Pro
Traditional microprocessors, built on silicon, have seen significant performance improvements in recent years due to shrinking transistor sizes – however, expense remains a barrier for integrating such chips into disposable or flexible products. This cost is typically driven by three main factors: the expensive silicon fabrication processes, licensing fees for…
Recent Posts
- Best Buy slashes up to $400 off Apple tech in a limited-time sale — get AirPods, MacBooks, iPads and Apple Watches from $99.99
- The Instagram Plus subscription has officially launched
- Cyberdecks used to look like little laptops, but now they’re getting more personal
- Canada Prime Minister Mark Carney announces questionable national AI strategy
- Kevin O’Leary agrees to downsize massive Utah data center
Archives
- June 2026
- May 2026
- April 2026
- March 2026
- February 2026
- January 2026
- December 2025
- November 2025
- October 2025
- September 2025
- August 2025
- July 2025
- June 2025
- May 2025
- April 2025
- March 2025
- February 2025
- January 2025
- December 2024
- November 2024
- October 2024
- September 2024
- August 2024
- July 2024
- June 2024
- May 2024
- April 2024
- March 2024
- February 2024
- January 2024
- December 2023
- November 2023
- October 2023
- September 2023
- August 2023
- July 2023
- June 2023