QTREX Interconnect Independently Tested at 20 mK by a Leading Quantum Computing Company; Over 100 dB Channel Isolation, 60 dB Beyond the Market Leader
Key Highlights
- ➤QTREX (QTEX) interconnect achieved over 100 dB channel isolation at 20 millikelvin.
- ➤QTREX (QTEX) exceeded leading flexible cabling’s 40 dB crosstalk specification by over 60 dB.
- ➤QTREX (QTEX) and testing company are finalizing a binding definitive agreement.
- ➤QTREX (QTEX) expects to disclose the testing company and agreement within weeks.
- ➤QTREX (QTEX) expects additional quantum-computing agreements in Q4 2026.
Expert Statements
Dagi Ben-Noon, Chief Executive Officer of QTREX Quantum
“The coldest, most unforgiving environment in computing. One of the most exacting teams in our industry. Their instruments, their cryogenic system, their reference cables. That is the test, and these are the results.”
Dagi Ben-Noon, Chief Executive Officer of QTREX Quantum
“We view 60 decibels more isolation than the leading flexible cabling on the market as not an improvement but a different category, and it is what a million qubit machine will require.”
Ness Ziona, Oct. 01, 2026 (GLOBE NEWSWIRE) -- QTREX Quantum Ltd. (Nasdaq: QTEX) ("QTREX" or the "Company"), a company focused on advancing Additively Manufactured Electronics ("AME") for quantum computing infrastructure, today announced the results of independent testing of its AME cryogenic interconnect by one of the quantum computing industry's leading companies. The testing company conducted separate microwave transmission tests at 20 millikelvin in its own cryogenic system, using its own instruments, reference cables and calibration standards. The results confirm the interconnect's microwave performance at an operating temperature of superconducting quantum processors. On the strength of these results, QTREX and the testing company are finalizing a binding definitive agreement.
Key results: * Channel-to-channel isolation better than 100 dB across the 4 to 8 GHz qubit band, between adjacent channels on a 0.34 millimeter pitch over a 15 centimeter run. No crosstalk was detected above the instrument's noise floor in any tested channel pair, adjacent or not. This exceeds the published 40 dB channel to channel crosstalk specification of leading flexible cryogenic cabling by more than 60 dB. * Channel-to-channel phase matching at 20 millikelvin. Cryogenic testing confirmed that channels formed together in a single monolithic AME body remain phase matched, supporting precise coordination of microwave signals for qubit control and readout. * Impedance held constant along the entire line, with reflections from the line itself below 55 dB from 2 to 15 GHz, a uniformity previously seen only in machined coaxial cable. * Insertion loss at 20 millikelvin of approximately 1 dB at 1 GHz and 2 dB at 6 GHz, including connectors. Cooling from room temperature reduced insertion loss, expressed in dB, by approximately a factor of three. * Performance unchanged across repeated cooldowns. The channels measured at 20 millikelvin returned the same results in a second cooldown after warming to room temperature. * RF performance unchanged under significant bending and after vacuum exposure, with X-ray and optical inspection showing no cracks, delaminations or subsurface defects. Every qubit needs several microwave lines running down to 20 millikelvin. Today's thousand qubit machines already carry thousands of hand-assembled coaxial cables, and the million qubit machines the industry is building toward cannot be wired that way. Dense, monolithic interconnect that isolates every channel, holds the channels in phase with one another and performs at 20 millikelvin is the missing piece. QTREX's additively manufactured interconnect delivers it.
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