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QTREX Proprietary Quantum Interconnect Platform Exceeds Performance Requirements Established by Strategic Partners

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QTREX Quantum (Nasdaq: QTEX) reported that its proprietary printed coaxial quantum interconnect platform exceeded RF performance requirements set by its strategic partners as part of their qualification processes. This validation is described by the company as a key milestone in its research, development and commercialization program for quantum connectivity.

According to QTREX, RF characterization showed continuous broadband transmission from 10 MHz to 20 GHz with no observed resonances, at least 68 dB crosstalk suppression, picosecond-level timing precision, and tightly controlled insertion loss, impedance and transmission consistency, supporting scalability for high‑density quantum hardware systems.

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Positive

  • Exceeded partner RF requirements in qualification process for proprietary interconnect platform
  • Broadband operation from 10 MHz to 20 GHz with no observed resonances or discontinuities
  • Crosstalk suppression maintained at least 68 dB below source signal across measured band
  • Average channel-to-channel skew above 1 GHz of only 4.4 picoseconds
  • Group delay tightly clustered between 1.020–1.022 ns, a 2-picosecond spread
  • Manufacturing consistency with insertion-loss variation of 0.33 dB and impedance variation under 0.3 ohms

Negative

  • None.

Market Context

The prior quantum collaboration, news_id 1048528, was followed by a -0.9% 24-hour reaction, adding a...
Analysis

The prior quantum collaboration, news_id 1048528, was followed by a -0.9% 24-hour reaction, adding a cautionary platform precedent. The active F-3 is a resale registration; commercial conversion remains relevant to monitor.

Key Figures

Continuous bandwidth: 10 MHz through 20 GHz Crosstalk suppression: 68 dB below source signal Channel skew: 4.4 picoseconds +5 more
8 metrics
Continuous bandwidth 10 MHz through 20 GHz RF characterization
Crosstalk suppression 68 dB below source signal Across the measured band
Channel skew 4.4 picoseconds Average channel-to-channel skew above 1 GHz
Group delay 1.020–1.022 nanoseconds Measured group delay
Delay spread 2 picoseconds Spread in absolute delay
Insertion-loss variation 0.33 dB Average measured variation
Impedance variation Less than 0.3 ohms Measured characteristic impedance variation
Transmission agreement Within 0.06 dB Forward and reverse transmission measurements

Historical Context

5 past events · Latest: May 19 (Positive)
Pattern 5 events
Date Event Sentiment 24h Move Catalyst
May 19 Ticker transition Positive +2.1% Company renamed QTREX and announced QTEX trading start
May 18 Purchase order Positive -5.8% NYU Langone issued a $580,000 ART100 purchase order
May 11 Strategic update Positive -6.3% Company outlined AME, quantum connectivity, and medical asset monetization plans
May 01 AME system order Positive +5.8% Irish technological university ordered a $596,000 AME system
Apr 30 Development agreement Positive -0.9% Qarakal collaboration targeted cryogenic quantum interconnect testing

24h Move is the share-price change in the day after each event; other market factors may also have contributed.

Pattern Detected

Recent positive commercial and strategic announcements produced mixed 24-hour reactions, with both gains and declines recorded.

Key Terms

additively manufactured electronics, rf, crosstalk suppression, insertion-loss variation, +2 more
6 terms
additively manufactured electronics technical
"focused on advancing Additively Manufactured Electronics (AME)"
Additively manufactured electronics are electronic components and circuits created by layer-by-layer printing techniques instead of traditional machining or assembly. Think of building a cake where each layer can contain wiring, sensors or conductive traces so a finished part can combine structure and electronics in one piece. For investors, this can cut production time and part counts, enable custom or lightweight designs, and open new product opportunities or cost savings across manufacturing and supply chains.
rf technical
"exceeded the RF performance requirements"
rf (commonly written r_f) denotes the risk-free rate — the theoretical return on an investment with no chance of loss, often used as a baseline for valuing other assets. Investors use it like a yardstick: returns above this number compensate for extra risk, so it helps price stocks, bonds and option valuations and guides decisions about whether higher-return opportunities justify their added risk. Think of it as the safe deposit box interest rate against which riskier bets are measured.
crosstalk suppression technical
"Industry-Leading Isolation: Crosstalk suppression was strictly maintained"
Techniques and design measures that reduce unwanted interference or leakage of signals between parallel channels, circuits, sensors, or assay probes so each channel reads or behaves independently. Like adding soundproofing between adjacent rooms to prevent voices from bleeding through, crosstalk suppression improves accuracy, reliability and performance of electronic systems, communication links, medical tests, or multi-channel products, which can affect product quality, costs, and market competitiveness.
insertion-loss variation technical
"average insertion-loss variation of only 0.33 dB"
A measure of how much signal power a device or connector reduces when it is placed into an optical or electrical path, and how that reduction changes across wavelengths, temperatures, manufacturing units or over time. Think of it like putting a valve or filter into a water pipe: insertion-loss variation is the difference in how much the flow is slowed under different conditions or between different pieces. Investors care because large or unpredictable variation can affect product performance, customer satisfaction, manufacturing yields and the competitive value of communications or sensor equipment.
characteristic impedance technical
"characteristic impedance varying by less than 0.3 ohms"
Characteristic impedance is the inherent ratio of voltage to current that a uniform transmission line or cable presents to a signal traveling along it, measured when the line is infinitely long or terminated in the same impedance. It matters to investors because mismatches between this impedance and connected equipment cause signal reflections, loss, or distortion in high-speed data, communications, and test systems, affecting product performance and compatibility like a pipe size affecting water flow.
group delay technical
"Group delay measured between 1.020 and 1.022 nanoseconds"
Group delay is a measure of how different frequency components of a signal are slowed down as they pass through a device or network, calculated as the change in signal phase with frequency. It matters to investors because uneven group delay can distort data, voice, or video transmissions, hurting product performance, customer experience, or regulatory compliance for companies in telecom, audio/video, and electronics—similar to lanes on a highway causing some cars to arrive later than others.

AI-generated analysis. How Rhea-AI works. Not financial advice.

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Ness Ziona, Israel, July 31, 2026 (GLOBE NEWSWIRE) -- QTREX Proprietary Quantum Interconnect Platform Exceeds Performance Requirements Established by Strategic Partners

Ness Ziona, Israel, July 31, 2026 – QTREX Quantum Ltd. (Nasdaq: QTEX) ("QTREX" or the "Company") a company focused on advancing Additively Manufactured Electronics (“AME”) for quantum computing infrastructure today announced that its proprietary printed coaxial quantum interconnect platform exceeded the RF performance requirements, as explained below, established by the Company’s strategic partners as part of the qualification process.

This validation marks an important milestone in QTREX’s research, development, and commercialization program. The characterization protocol incorporated stringent RF performance thresholds provided through these engagements, and the measured results exceeded them across key performance parameters, addressing growing interest from multiple companies across the quantum hardware ecosystem evaluating QTREX’s proprietary connectivity technology.

The RF characterization measured the performance of QTREX’s proprietary coaxial shielding architecture across the following critical parameters:

Continuous Broadband Transmission: Continuous operation from 10 MHz through 20 GHz with no observed resonance, notch or discontinuity across the measured channels.

Industry-Leading Isolation: Crosstalk suppression was strictly maintained at a minimum of 68 dB below the source signal across the entire measured band.

Picosecond-Level Precision: Tight channel matching with an average channel-to-channel skew above 1 GHz of only 4.4 picoseconds. Group delay measured between 1.020 and 1.022 nanoseconds, representing just a 2-picosecond spread in absolute delay.

Manufacturing Consistency: The measured channels demonstrated highly consistent electrical performance, with average insertion-loss variation of only 0.33 dB, characteristic impedance varying by less than 0.3 ohms, and forward and reverse transmission measurements agreeing to within 0.06 dB.

These capabilities address a scalability requirement as quantum computing systems require increasing numbers of control and readout channels to operate simultaneously within dense, space-constrained hardware environments.

“Quantum processors cannot scale without equally advanced infrastructure to connect, control and read them,” said Dagi Ben-Noon, Chief Executive Officer of QTREX. “By exceeding these externally defined performance requirements, the results remove a critical technical barrier and validate the readiness of our proprietary platform for commercial application development. To the best of our knowledge, no directly comparable interconnect platform currently offers this combination of isolation, timing precision and integrated architecture, placing QTREX in a category of its own within the emerging quantum connectivity market.”

High-density quantum systems face significant scalability challenges as growing numbers of control and readout channels increase the risk of unwanted coupling, timing mismatch and system complexity. QTREX’s integrated architecture is designed to address these constraints and support the development of application-specific connectivity components for quantum processors, cryogenic control and readout systems, and other advanced high-frequency applications. The successful validation is expected to advance the Company’s existing strategic engagements and provide a stronger technical foundation for evaluation, product-definition and development programs with the quantum computing industry.

About QTREX Quantum

QTREX Quantum Ltd. (Nasdaq: QTEX) is a technology company focused on advanced connectivity and electronics manufacturing solutions for next-generation hardware markets. Following its acquisition of the AME platform, the Company is developing high-density, thermally optimized quantum connectivity solutions for dilution cryostats and advancing AME applications for defense, aerospace, missile, space, and other mission-critical environments. The Company also continues to advance its medical technology portfolio, including respiratory support and blood monitoring platforms, while actively working to monetize certain parts of the medical business.

For more information, please visit: www.q-trex.com

Forward-Looking Statement Disclaimer

This press release contains express or implied forward-looking statements pursuant to U.S. Federal securities laws. These forward-looking statements are based on the current expectations of the management of the Company only and are subject to factors and uncertainties that could cause actual results to differ materially from those described in the forward-looking statements. For example, the Company is using forward-looking statements when it discusses its platform and architecture capabilities, characteristics and qualifications; collaborating partner’s success and outcomes; progress of its research, development and commercialization program; its ability to address growing interest from companies across the quantum hardware ecosystem; its ability to address scalability requirements and remove technical barriers; its readiness for commercial application development and application-specific product development; the establishment of a category-defining technological position in quantum connectivity; the non-existence of directly comparable interconnect platform in the market today; and that the validation described will advance the company’s existing engagements and provide a stronger technical foundation for evaluation, product-definition and development programs with the quantum industry. . Except as otherwise required by law, the Company undertakes no obligation to publicly release any revisions to these forward-looking statements. More detailed information about the risks and uncertainties affecting the Company is contained under “Risk Factors” in the Company’s annual report on Form 20-F for the fiscal year ended December 31, 2025, filed with the U.S. Securities and Exchange Commission.

Company Contact
QTREX Quantum
Email: info@q-trex.com
Phone: +972-9-9664485


FAQ

What did QTREX Quantum (Nasdaq: QTEX) announce about its quantum interconnect platform on July 31, 2026?

QTREX Quantum announced that its proprietary printed coaxial quantum interconnect platform exceeded RF performance requirements set by strategic partners. According to QTREX, this validation is a key milestone in its research, development and commercialization program for high-density quantum connectivity solutions.

What RF performance did QTREX Quantum’s QTEX interconnect achieve in the July 2026 validation?

The platform demonstrated continuous broadband operation from 10 MHz to 20 GHz with no observed resonances or discontinuities. According to QTREX, it also maintained at least 68 dB crosstalk suppression and picosecond-level timing precision, supporting demanding quantum hardware environments.

How precise is the timing performance of QTREX Quantum’s QTEX coaxial interconnect platform?

QTREX reported an average channel-to-channel skew above 1 GHz of only 4.4 picoseconds. According to QTREX, measured group delay ranged from 1.020 to 1.022 nanoseconds, representing just a 2‑picosecond spread in absolute delay across channels.

How consistent is the manufacturing performance of QTREX Quantum’s QTEX quantum interconnect?

The measured channels showed average insertion-loss variation of only 0.33 dB and characteristic impedance variation under 0.3 ohms. According to QTREX, forward and reverse transmission measurements also agreed within 0.06 dB, indicating tightly controlled manufacturing consistency.

Why is QTREX Quantum’s RF validation important for QTEX shareholders and quantum computing customers?

The validation shows QTREX’s platform exceeded externally defined RF requirements from strategic partners during qualification. According to QTREX, this removes a critical technical barrier and is expected to strengthen its foundation for evaluation, product-definition and development programs in quantum computing.

What markets is QTREX Quantum targeting with its QTEX quantum connectivity and AME technology?

QTREX focuses on high-density, thermally optimized quantum connectivity for dilution cryostats and next-generation hardware. According to QTREX, it is also advancing AME applications for defense, aerospace, missile, space and other mission-critical environments, while managing a separate medical technology portfolio.