
Computing
Ferric Launches New Integrated Voltage Regulator For AI And High-Performance Processors
Fe1766 delivers an unprecedented 160 A in the industry’s smallest IVR footprint, redefining chip-level and system-level power delivery for the AI era
NEW YORK--(BUSINESS WIRE)--Ferric, the leader in cutting-edge power conversion solutions, today announced the launch of its latest flagship product, Fe1766, an Integrated Voltage Regulator (IVR) that sets new standards in current delivery, power density, efficiency, and regulation bandwidth for the most power-hungry digital processors. Built to address power demands of AI processors, datacenter infrastructure and advanced electronics, the Fe1766 delivers 160 A from just 35.5 mm² of silicon, with a fully integrated inductor — small enough to sit directly within the processor package – while supporting a scalable vertical PDN architecture capable of kilowatt-class delivery. This leap establishes a new benchmark for integrated power delivery in the AI era.
Built for the New Power Era
As AI workloads scale, modern processors can demand over 5 kW per chip — more than ten times what CPUs and GPUs required just a few years ago. Supporting this massive jump in power consumption requires not just incremental improvements, but a fundamental rethink of power delivery networks (PDNs).
Ferric’s Fe1766 accomplishes this by:
- Delivering 160 A in just 35.5 mm² (8 × 4.4 mm), with >4.5 A/mm² current density
- Achieving >10 MHz regulation bandwidth, over 10× faster than conventional multiphase
- Providing 3× power per area and >20× per volume versus competitive solutions.
- Enabling vertical power delivery within the processor package
- Scaling to >10 kW with 64 devices
“This launch represents a major milestone in Ferric’s mission to push the boundaries of power density and efficiency,” said Noah Sturcken, Ferric CEO. “With the Fe1766, we’re enabling the AI and computing industry to move faster, smarter, and more sustainably — solving both the chip-level bottleneck and the system-level PDN challenge in one breakthrough.”
Transforming Datacenter Economics
As datacenters grapple with rising energy costs — where power can account for more than 50% of total ownership cost — Ferric’s highly efficient IVRs offer a smarter solution.
- Deliver more power within the processor package
- Cuts energy losses with vertical power delivery
- Free up board and system space for performance gains
Leading processor developers are actively integrating the Fe1766, validating its capability to meet the power delivery demands of modern kilowatt-class computing platforms.
The Fe1766 sets the stage for Ferric’s next-generation roadmap, which will continue to expand the limits of current density, conversion efficiency, voltage range and control bandwidth.
To learn more or to request a demo, visit: www.ferric.com/contact
About Ferric
Ferric is a leading innovator in Integrated Voltage Regulator (IVR) solutions, specializing in advanced power conversion technologies designed to optimize power delivery in next generation computing systems. By providing dynamic control over power at the core level, Ferric enables greater computational density, higher efficiency and smarter performance across a wide range of industries. With proven reliability and system-level impact, Ferric’s solutions play a pivotal role in unlocking the potential of tomorrow’s most demanding technologies.
Contacts
Press Contact:
Lauren Fischer
Wireside Communications for Ferric
Ferric@wireside.com
(402) 883-7508
Frequently Asked Questions
What is Fe1766?
Fe1766 is an Integrated Voltage Regulator (IVR) from Ferric that delivers 160 A in a small footprint, designed for AI processors, datacenters, and advanced electronics.
What are the benefits of Fe1766?
Fe1766 offers high current density, efficiency, and regulation bandwidth, enabling vertical power delivery and scaling to >10 kW.
How does Fe1766 improve datacenter economics?
Fe1766 reduces energy losses, delivers more power within the processor package, and frees up board space for performance gains, improving datacenter efficiency.
First published on Tue, Aug 26, 2025
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