Quantum computers1 could revolutionize computing in a profound way due to the massive speedup they promise. A quantum computer comprises a cryogenic quantum processor and a classical electronic controller. When scaling up the cryogenic quantum processor to at least a few thousands, and possibly millions, of qubits required for any practical quantum algorithm, cryogenic CMOS (cryo-CMOS) electronics is required to allow feasible and compact interconnections between the controller and the quantum processor. Cryo-CMOS leverages the CMOS fabrication infrastructure while exploiting the continuous improvement of performance and miniaturization guaranteed by Moore's law, in order to enable the fabrication of a cost-effective practical quantum compu...
We report on our systems engineering activities concerning cryogenic CMOS electronics as building bl...
The most promising quantum algorithms require quantum processors that host millions of quantum bits ...
The most promising quantum algorithms require quantum processors that host millions of quantum bits ...
Cryogenic CMOS (cryo-CMOS) is a viable technology for the control interface of the large-scale quant...
Cryogenic CMOS (cryo-CMOS) is a viable technology for the control interface of the large-scale quant...
Quantum computers hold the promise to solve some of the most complex problems of today. The core of ...
A fault-tolerant quantum computer with millions of quantum bits (qubits) requires massive yet very p...
A fault-tolerant quantum computer with millions of quantum bits (qubits) requires massive yet very p...
A fault-tolerant quantum computer with millions of quantum bits (qubits) requires massive yet very p...
We propose a classical infrastructure for a quantum computer implemented in CMOS. The peculiarity of...
We propose a classical infrastructure for a quantum computer implemented in CMOS. The peculiarity of...
We propose a classical infrastructure for a quantum computer implemented in CMOS. The peculiarity of...
We propose a classical infrastructure for a quantum computer implemented in CMOS. The peculiarity of...
The feasibility of using commercial CMOS processes for implementing scalable cryogenic control elect...
CMOS circuits operating at cryogenic temperature (cryo-CMOS) are required in several low-temperature...
We report on our systems engineering activities concerning cryogenic CMOS electronics as building bl...
The most promising quantum algorithms require quantum processors that host millions of quantum bits ...
The most promising quantum algorithms require quantum processors that host millions of quantum bits ...
Cryogenic CMOS (cryo-CMOS) is a viable technology for the control interface of the large-scale quant...
Cryogenic CMOS (cryo-CMOS) is a viable technology for the control interface of the large-scale quant...
Quantum computers hold the promise to solve some of the most complex problems of today. The core of ...
A fault-tolerant quantum computer with millions of quantum bits (qubits) requires massive yet very p...
A fault-tolerant quantum computer with millions of quantum bits (qubits) requires massive yet very p...
A fault-tolerant quantum computer with millions of quantum bits (qubits) requires massive yet very p...
We propose a classical infrastructure for a quantum computer implemented in CMOS. The peculiarity of...
We propose a classical infrastructure for a quantum computer implemented in CMOS. The peculiarity of...
We propose a classical infrastructure for a quantum computer implemented in CMOS. The peculiarity of...
We propose a classical infrastructure for a quantum computer implemented in CMOS. The peculiarity of...
The feasibility of using commercial CMOS processes for implementing scalable cryogenic control elect...
CMOS circuits operating at cryogenic temperature (cryo-CMOS) are required in several low-temperature...
We report on our systems engineering activities concerning cryogenic CMOS electronics as building bl...
The most promising quantum algorithms require quantum processors that host millions of quantum bits ...
The most promising quantum algorithms require quantum processors that host millions of quantum bits ...