Home > Press > Home > Press release French Team on Route Towards an Interposer Prototype for Quantum And Control Chips Integration at Very Low Temperature: Platform Optimizes Control and Readout of Qubits by Placing Control Electronics Near Quantum Chips Without Wire Bonding
![]() |
Abstract:
A team of French scientists has started to build a prototype interposer that meets requirements of quantum computing by allowing integration and testing of both quantum and control chips fabricated from different materials and technologies and coming from different partners.
Known as QuIC3, which stands for quantum integrated circuits with CryoCMOS, the prototype demonstrator controls quantum chips by embedding control electronics near the quantum chip inside a dilution cryostat at T<1K. This temperature range is required for reliable operation of qubits, the fundamental or logic units of quantum computers. The demonstrator is made from an interposer in silicon on which quantum chips and control electronics are integrated by 3D flip-chip processes. The control electronics are fabricated on standard FDSOI 28nm-node technology and manufactured by STMicroelectronics.
The team included scientists at CEA-Leti, CEA-List and Néel Institute at the French National Centre for Scientific Research (CNRS).
Realization of a QuIC3 demonstrator for 3D co-integration of quantum chips with CryoCMOS FDSOI 28nm control chips is an important step toward a full quantum computing system that operates at a very low temperature, less than 1 K, with optimum control and reading performance, said Maud Vinet, head of CEA-Leti's quantum computing program.
The interposers’ primary purpose is to accommodate and connect quantum chips containing qubits and control chips, and to address and read the qubits, with two metal levels on the front side of the interposers. Additional on-chip circuits integrated on the interposer provide alternative reading options of information stored in the qubits. To functionalize further the interposer, passive elements and filter devices could be integrated on subsequent versions. The QUI1 (Quantum Interposer n°1) mask set used to build the first interposer was designed during the Covid-19 confinement period by pooling the expertise of CEA-Leti, CEA-List and Néel Institute at CNRS.
This interposer breakthrough is a unique combination of expertise on quantum physics, 3D technologies, material integration, IC interface, passives design and micro-architecture to achieve a solution adapted to quantum computation, Vinet said. The platform optimizes the control and readout of qubits by bringing the control electronics to the vicinity of the quantum chip without wire bonding.
This proximity of the control electronics and the qubits increases the number of qubits that can be controlled, because it avoids the limitation on the number of lines of the cryostat. Wire bonding is not necessary because the qubits and control electronics are coupled by routing lines on the interposer, which reduces parasitic capacitance and inductance that complicate measurements.
the platform created by the interposer also can allow thermal decoupling of the quantum and control chips to keep the quantum chip at the lowest temperature possible.
In the coming months, the CEA-Leti, CEA-List and CNRS team will further investigate integration of superconducting elements to optimize the properties of passive elements. The collaboration will also include continued work on fabrication of the interposer, quantum chips and control-electronics chips. Once all the bricks are ready and assembled, the quantum and control chips will be flipped and hybridized on the interposer, followed by electrical measurements at low temperatures of the multi-chip assemblies. The final full interposer prototype is expected in 2021.
All of these elements aim to reach very large-scale integration of qubits," Vinet added. Next generations of the interposer will incorporate through silicon vias (TSV) to increase the connection density and eliminate wire bonding.
####
For more information, please click here
Contacts:
Press Contact
Agency
+33 6 74 93 23 47
Copyright © CEA Leti
If you have a comment, please Contact us.Issuers of news releases, not 7th Wave, Inc. or Nanotechnology Now, are solely responsible for the accuracy of the content.
| Related News Press |
News and information
Quantum computer improves AI predictions April 17th, 2026
Flexible sensor gains sensitivity under pressure April 17th, 2026
A reusable chip for particulate matter sensing April 17th, 2026
Detecting vibrational quantum beating in the predissociation dynamics of SF6 using time-resolved photoelectron spectroscopy April 17th, 2026
Possible Futures
A fundamentally new therapeutic approach to cystic fibrosis: Nanobody repairs cellular defect April 17th, 2026
UC Irvine physicists discover method to reverse ‘quantum scrambling’ : The work addresses the problem of information loss in quantum computing system April 17th, 2026
Chip Technology
A reusable chip for particulate matter sensing April 17th, 2026
Metasurfaces smooth light to boost magnetic sensing precision January 30th, 2026
Quantum Computing
Quantum computer improves AI predictions April 17th, 2026
UC Irvine physicists discover method to reverse ‘quantum scrambling’ : The work addresses the problem of information loss in quantum computing system April 17th, 2026
Researchers develop molecular qubits that communicate at telecom frequencies October 3rd, 2025
Announcements
A fundamentally new therapeutic approach to cystic fibrosis: Nanobody repairs cellular defect April 17th, 2026
UC Irvine physicists discover method to reverse ‘quantum scrambling’ : The work addresses the problem of information loss in quantum computing system April 17th, 2026
|
|
||
|
|
||
| The latest news from around the world, FREE | ||
|
|
||
|
|
||
| Premium Products | ||
|
|
||
|
Only the news you want to read!
Learn More |
||
|
|
||
|
Full-service, expert consulting
Learn More |
||
|
|
||