STOCK TITAN

QTREX's Patent-Pending Technology Achieves First Direct Conversion of 3D-Printed Insulation into Graphene-Like Carbon to Protect Quantum Processors

(Neutral)
Tags

QTREX Quantum (Nasdaq: QTEX) announced a patent-pending technology that directly converts its 3D-printed dielectric insulation into electrically conductive, graphene-like carbon using localized laser processing. Selected regions of insulation become patterned conductors without added materials or separate assembly steps, enabling monolithic stray-photon absorbers inside quantum packages.

Research at Northeastern University, using QTREX's AME platform and DF INSU300 material, produced conductive carbon under all 20 laser-processing conditions tested, with Raman spectroscopy confirming a graphene-like structure. QTREX targets commercial launch of DF INSU300 by the end of the third quarter of 2026 and is validating performance at cryogenic temperatures and high frequencies for integration into quantum-computing infrastructure.

Loading...
Loading translation...

Positive

  • Conductive carbon in 20/20 tests using DF INSU300 on QTREX’s AME platform
  • Patent-pending process for direct laser conversion of 3D-printed insulation into conductive, graphene-like carbon
  • Commercial launch targeted for DF INSU300 by end of Q3 2026
  • Integrated photon absorbers aim to replace bulky discrete components in quantum packages

Negative

  • None.

Market Context

+2.07% was recorded before this announcement, while the tracked peers moved lower. The comparison fr...
Analysis

+2.07% was recorded before this announcement, while the tracked peers moved lower. The comparison frames QTREX as diverging from current peer momentum; the active F-3 resale registration and pending validation remain relevant risks to monitor.

Key Figures

Laser-processing conditions: 20 conditions Commercial launch target: End of Q3 2026 Target qubit scale: 1 million qubits
3 metrics
Laser-processing conditions 20 conditions Northeastern University research
Commercial launch target End of Q3 2026 DF INSU300 dielectric material
Target qubit scale 1 million qubits Management statement about quantum-computing scaling

Historical Context

5 past events · Latest: May 19 (Positive)
Pattern 5 events
Date Event Sentiment 24h Move Catalyst
May 19 corporate name change Positive +2.1% Name and ticker change emphasized AME and quantum connectivity strategy.
May 18 purchase order Positive -5.8% $580,000 hospital purchase order followed multi-patient evaluation of ART100.
May 11 strategic update Positive -6.3% Management outlined AME, quantum connectivity, and medical-business monetization tracks.
May 01 system purchase order Positive +5.8% $596,000 AME system order included a received 40% upfront payment.
Apr 30 development agreement Positive -0.9% Qarakal agreement initiated cryogenic testing of AME quantum interconnects.

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

Pattern Detected

The stock historically diverged from positive or strategically oriented announcements on three of the five selected events.

Key Terms

quasiparticles, raman spectroscopy, cryogenic temperatures, josephson behavior
4 terms
quasiparticles technical
"generates quasiparticles, shortens qubit lifetimes and drives up error rates."
Quasiparticles are collective excitations in solids that behave like particles — for example, a ripple of electrons or vibrations in a crystal that act as if they were a single object. Think of them as a coordinated wave in a crowd that you can treat like one person. They matter to investors because they underlie key technologies (semiconductors, superconductors, quantum devices, sensors) and can affect product performance, patents, and the competitive edge of firms developing advanced materials or electronics.
raman spectroscopy technical
"Raman spectroscopy confirmed the carbon's graphene-like structure."
A laboratory technique that shines laser light on a material and reads the specific pattern of scattered light to identify molecules and chemical structure, like using a fingerprint to tell what something is made of. It matters to investors because it helps companies prove product composition, ensure manufacturing quality, speed research and development, and meet regulatory standards—factors that affect product reliability, production costs, and commercial risk.
cryogenic temperatures technical
"advanced the technology into validation at cryogenic temperatures and high frequencies"
Extremely low temperatures used to preserve materials or enable special physical properties, typically well below -150°C (often near the temperatures of liquid nitrogen or liquid helium). For investors, cryogenic temperatures matter because they affect storage, transport and manufacturing costs, safety procedures, equipment needs and regulatory compliance for industries like biotech, aerospace, superconductors and advanced materials—similar to how a deep freezer changes how you store and handle food.
josephson behavior technical
"explore the proximity effect and Josephson behavior, the junction physics"
A quantum mechanical effect in which paired electrons flow across a very thin barrier between superconductors, producing a measurable current and a precise relationship between voltage and the quantum phase. It underlies devices called Josephson junctions used in superconducting circuits, quantum bits, and ultra-sensitive sensors, so its presence and quality can affect the performance and commercial potential of technologies that depend on superconducting electronics, much like a tiny, frictionless bridge that lets traffic move with special rules.

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

See more from StockTitan in Google Search and AI answers. Adds StockTitan as a preferred source · opens Google
Add on Google

Northeastern University research produced conductive carbon across all 20 tested laser-processing conditions; QTREX targets commercial launch of the underlying dielectric material as DF INSU300 by the end of the third quarter of 2026

Ness Ziona, Israel, Aug. 19, 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 a patent-pending technology targeting one of quantum computing's recognized barriers to scale: stray radiation that breaks cooper pairs, generates quasiparticles, shortens qubit lifetimes and drives up error rates. Using localized laser processing, the technology achieved the first direct conversion of 3D-printed dielectric material into electrically conductive, graphene-like carbon. Selected regions of printed insulation were transformed into patterned conductive structures without added conductive materials or separate component assembly. The printed insulation itself becomes the conductor. QTREX is now integrating this capability into quantum packages as monolithic stray-photon absorbers,  designed to intercept harmful photons before they reach superconducting circuits.

Research conducted at Northeastern University, using QTREX's AME platform and its DF INSU300 dielectric material, produced conductive carbon across all 20 laser-processing conditions tested, and Raman spectroscopy confirmed the carbon's graphene-like structure. Electrical resistance and conversion depth were controlled through laser power and scan speed, and the study defined a practical manufacturing window balancing electrical performance with the integrity of the printed substrate. This is the difference between producing a material and engineering a component: the results establish a controllable, repeatable process for creating functional carbon structures at chosen locations within printed quantum infrastructure.

As quantum processors scale to higher qubit counts, protection must move closer to sensitive circuitry without adding components or increasing assembly complexity. QTREX has therefore advanced the technology into validation at cryogenic temperatures and high frequencies, measuring the electrical behavior of the laser-written carbon and the absorption response of integrated absorber architectures. The target is photon protection built into printed packages and interconnects rather than attached to them: absorptive structures positioned precisely where circuits are most exposed, designed to replace bulky discrete components, reduce assembly interfaces and reclaim critical space inside the cryostat.

"You cannot assemble your way to a million qubits," said Dagi Ben-Noon, Chief Executive Officer of QTREX. "QTREX is turning the printed package itself into part of the protection system. The material capability we have established lets us create functional structures exactly where the architecture requires them, close to the most sensitive superconducting circuits. This is the architecture quantum computing needs to scale: protection, connectivity and mechanical structure manufactured as a single integrated system."

QTREX targets commercial launch of DF INSU300 by the end of the third quarter of 2026, bringing the dielectric material used in the Northeastern University research into the Company's commercial platform. Results from the cryogenic and high-frequency validation program are expected to follow. The Company is advancing absorber application development with existing industry partners while expanding engagement with additional quantum-computing companies. A subsequent development track will evaluate integration with superconducting materials and electrodes, including configurations designed to explore the proximity effect and Josephson behavior, the junction physics at the heart of today's leading superconducting quantum processors. Together, these tracks create a path from integrated passive protection to printed quantum components.

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 quantum computing's recognized barriers to scale: stray radiation that breaks cooper pairs, generates quasiparticles, shortens qubit lifetimes and drives up error rates, the potential advantages, benefits and capabilities of its conductive graphene-like carbon inside 3D-printed electronics; the approval of its pending patent technology; the ability of its technology to replace bulky discrete components, reduce assembly interfaces and reclaim critical space inside the cryostat; the development of monolithic stray-photon absorbers designed to intercept harmful photons before they reach superconducting circuits; the architecture quantum computing needs to scale; commercial launch of DF INSU300 and the timing thereof, bringing the dielectric material used in the Northeastern University research into the Company's commercial platform; its expectation that the results from the cryogenic and high-frequency validation program are to follow;  advancement of absorber application development with existing industry partners while expanding engagement with additional quantum-computing companies; and evaluation of integration with superconducting materials and electrodes, including configurations designed to explore the proximity effect and Josephson behavior.  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



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

FAQ

What did QTREX Quantum (Nasdaq: QTEX) announce on August 19, 2026?

QTREX Quantum announced a patent-pending technology that laser-converts 3D-printed insulation into conductive, graphene-like carbon. According to QTREX, this enables integrated stray-photon absorbers inside quantum packages to help protect superconducting circuits as quantum processors scale.

How does QTREX’s new graphene-like carbon technology benefit quantum processors for QTEX and IINN investors?

The technology creates conductive, graphene-like carbon directly within 3D-printed insulation to form built-in photon absorbers. According to QTREX, this can position protection closer to sensitive superconducting circuits, potentially reducing discrete components, assembly interfaces, and space requirements in quantum-computing hardware.

When will QTREX’s DF INSU300 material be commercially available for quantum applications?

QTREX targets commercial launch of DF INSU300 by the end of the third quarter of 2026. According to QTREX, this dielectric material underpins the laser-conversion process demonstrated at Northeastern University and will be integrated into the company’s commercial AME platform.

What role did Northeastern University play in QTREX (QTEX) graphene-like carbon development?

Northeastern University conducted research using QTREX’s AME platform and DF INSU300 dielectric material. According to QTREX, the university produced conductive carbon under all 20 laser-processing conditions tested, with Raman spectroscopy confirming graphene-like structure and defining a practical manufacturing window.

How is QTREX validating its laser-written carbon for quantum-computing infrastructure?

QTREX has advanced the technology into validation at cryogenic temperatures and high frequencies. According to QTREX, testing focuses on the electrical behavior of laser-written carbon and absorption response of integrated absorber architectures within printed quantum packages and interconnects.

What are QTREX Quantum’s next development steps beyond photon absorbers in QTEX technology?

QTREX is pursuing a subsequent development track evaluating integration with superconducting materials and electrodes. According to QTREX, this includes configurations to explore the proximity effect and Josephson behavior, aiming to progress from passive protection to printed quantum components.

In which markets is QTREX Quantum (Nasdaq: QTEX) applying its AME platform beyond quantum computing?

QTREX is advancing AME applications for defense, aerospace, missile, space, and other mission-critical environments. According to QTREX, the company also continues developing respiratory support and blood monitoring platforms while working to monetize selected parts of its medical technology portfolio.