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Read on LinkedIn ↗A*STAR Quantum Innovation Centre spin-out
Building the cryo-control standard for quantum computing.
Semiconductor-compatible.
Built in Singapore.
NAMIC SINGAPORE / STARTUP INNOVATION FORUM 2026
Qifrost won the pitching competition at NAMIC Singapore’s Startup Innovation Forum 2026, earning a fast track to the SLINGSHOT 2026 Top 50 Finals at SWITCH this October.
Read the announcementTEAM / SUMMER 2026
Diego Van Hemelryck, Jhanvi Tayal and Georges Heng join Qifrost as summer associates, bringing their INSEAD management training to market analysis, partnership development and the work of building a quantum hardware company.
Read on LinkedInEVENTS / AMSTERDAM
Eric W. Cao represented Singapore at Quantum Meets 2026 in Amsterdam, discussing the research, partnerships and commercial ecosystem needed to build a quantum industry.
Read on LinkedInMILESTONE / SPIN-OUT
Qifrost has spun out from the A*STAR Quantum Innovation Centre, taking the next step in translating Singapore’s quantum research into deployable hardware.
Read on LinkedInPERSPECTIVE
Qifrost shares its perspective on Singapore’s role in quantum hardware manufacturing and the transition from research to commercial delivery.
Read on LinkedInQELVIN | CRYOGENIC CONTROL
Control moves closer to the qubits.
Conceptual package illustration
Qifrost complements qubit developers by owning the full design-to-packaging stack for cryo-control in a key semiconductor node of Southeast Asia. Design, cryogenic test, characterization and packaging in-house. Device fab outsourced at leading foundries.
QELVINTM is the control layer that breaks through the quantum wiring wall. It runs at 4K inside the cryostat, adjacent to the qubits: one chip quietly conducting thousands of them, so cabling scales as log(n) and the gold-wire tangle disappears. Validated silicon, already running in the cold.
A full cryo-control stack: designed, taped out, packaged and validated in-house.
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Design, cryogenic test, characterisation and packaging in-house. Only the wafer fab is outsourced.
Peer-reviewed work from our team and collaborators across cryogenic CMOS control and superconducting advanced packaging, published with IEEE.
Whether you're a potential customer, collaborator, investor or just curious, we'd love to hear from you.
Get in Touch →Today's control architecture hits two physical walls. Both get worse with every qubit you add, and 1M+ qubit targets demand on-chip classical control.

A three-layer stack replaces the room-temperature rack: QELVIN cryo-CMOS control on top, a TSV interposer adjacent at 4K, and the qubit array bonded beneath. One control resource drives many qubits through on-chip sequencing.
Control starts digital, at the computer. Today, room-temperature electronics turn it analog at the rack, and a thick bundle of lines runs the full 300 K-to-~mK span into the cryostat. Qifrost’s QELVIN converts to analog right at 4 K, next to the qubits, so only a handful of short lines remain.
More qubits means more analog lines running the full cryostat span, from the room-temperature rack down to the qubits.
QELVIN converts to analog right next to the qubits, at 4 K, collapsing that bundle down to a handful of short lines.
Control electronics run at 300 K, about 300× hotter than the qubits at ~mK. Qifrost moves the digital-to-analog boundary to 4 K, adjacent to the qubit layer, cutting the number of lines that cross the full cryostat.
Conventional control wiring grows linearly and hits a wall. On-chip sequencing keeps it flat.
Explore the control platform, validated silicon and technical specifications.
Explore the Product →Electronic components for qubit control and readout that operate in the cryogenic regime, adjacent to the qubit layer. One control resource addresses many qubits through on-chip sequencing, so wiring scales as log(n) rather than 1:1 with qubit count.
Tell us your platform and qubit count, and we'll share specs and integration detail.
Contact the team →The cryogenic layer Qifrost owns grows with every generation, and control keeps moving closer to the qubits.
Conceptually a generic RF transceiver, with qubits instead of the antenna. The blocks between the room-temperature interface and the qubit array sit at 4 K: that's the layer Qifrost builds.
Company news, milestones and perspectives.
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Read on LinkedIn ↗The research and breakthroughs building the cold layer: a curated read on the science across the cryo-CMOS ecosystem. Twice a month.
Team
The team that designed, taped out, and validated the cryo-CMOS: deep cryo-electronics expertise paired with INSEAD commercial leadership.
Recent INSEAD MIM graduates embedded with the team, helping to build stronger bridges between lab-grade deep tech and the commercial world.
Origin: Spin-out from the A*STAR Quantum Innovation Centre, with extensive government lab resources and established foundational research.
CONTACT / SINGAPORE
Talk to us about cryogenic control, technical collaboration, partnerships or investment.