ZadeNor AI
ZadeNor AI
Back to Blog
Quantum Computing

BTQ Technologies and ICTK Finalize Architecture for Next-Generation Post-Quantum Security Chip

July 12, 2026
5 min
1,407 views
By ZadeNor AI Team
BTQ Technologies and ICTK Finalize Architecture for Next-Generation Post-Quantum Security Chip

BTQ Technologies and ICTK Finalize Architecture for Next-Generation Post-Quantum Security Chip

BTQ Technologies and ICTK Finalize Architecture for Next-Generation Post-Quantum Security Chip

Global quantum-safe engineering firm BTQ Technologies Corp. (Nasdaq: BTQ) has finalized the technical design phase for its next-generation hybrid security processor. Developed in direct cooperation with South Korean secure-element pioneer ICTK Co., Ltd. (KOSDAQ: 456010), the system architecture marks a structural milestone by integrating post-quantum cryptography (PQC) accelerators with physical hardware-rooted hardware identity footprints. The joint engineering track translates the entities’ previous $15 million co-investment and development accord from late 2025 into a deployable silicon blueprint, with manufacturing preparation and foundry scheduling now actively underway.

                     [ QCIM + PUF Chip Architectural Stack ]

Cryptographic Core ──► BTQ Quantum Compute-in-Memory (QCIM) soft IP block. Hardware Root/ID ──► ICTK VIA PUF™ passive, ECC-free silicon via extraction. Functional Target ──► Crypto-agile multi-layered acceleration (Classical & PQC). Delivery Window ──► Test chip client shipments scheduled for Q4 2026.

The Mechanics of QCIM and VIA PUF Fusion

The newly completed semiconductor architecture directly addresses a critical performance bottleneck facing modern edge-computing nodes, Internet of Things (IoT) hardware arrays, and artificial intelligence processors: the high latency and energy overhead typical of running resource-heavy lattice-based post-quantum algorithms. BTQ bypasses this constraint through its proprietary Quantum Compute-in-Memory (QCIM) soft IP architecture. By executing complex multi-layered cryptographic subroutines directly within the chip’s internal memory subsystem rather than constantly shuffling bits back and forth to an external CPU core, QCIM minimizes data bus congestion, scales down power dissipation, and ensures real-time processing agility for both legacy classical ciphers and next-generation quantum-resistant protocols.

To establish a zero-trust hardware identity layer, the platform embeds ICTK’s specialized VIA PUF™ technology. Unlike traditional SRAM-based Physically Unclonable Functions that can shift under temperature variations or require intensive Error Correction Code (ECC) sub-chips to maintain stability, VIA PUF is entirely passive and ECC-free. It derives a permanent, unclonable digital fingerprint from the microscopic, random structural variations that naturally occur across hundreds of thousands of microfabricated logic vias during wafer lithography. This hardware root of trust makes the chip virtually immune to reverse-engineering, side-channel attacks, or device cloning, allowing high-assurance enterprise and government networks to verify a device’s authenticity down to the physical silicon layer.

Market Commercialization Strategy

Led by BTQ CEO and Chairman Olivier Roussy Newton, the productization strategy aims to leverage recent U.S. Executive Orders demanding the accelerated migration of federal infrastructure and supply chains to quantum-safe validation protocols. ICTK’s deep existing footprint in regulated markets—including active hardware rollouts with major telecommunications entities like South Korea’s LG U+—provides an established ecosystem route for the platform’s commercial release across the broader Asia-Pacific and global B2B sectors.

According to the joint deployment timeline, BTQ expects to finalize fabrication and ship physical validation test chips to core strategic partners and key enterprise accounts by the end of 2026. These engineering samples will undergo rigorous field-testing and laboratory evaluation to gauge real-world power efficiencies, algorithmic execution times, and regulatory compliance paths, clearing the way for mass foundry tape-outs and large-scale manufacturing deployment.

Review the official corporate financial filings, prospectus parameters, and security semiconductor product specifications via the PR Newswire here.

July 10, 2026

											Mohamed Abdel-Kareem2026-07-10T08:01:34-07:00																								

	Leave A Comment Cancel reply

Comment

		Type in the text displayed above			

Δ

This site uses Akismet to reduce spam. Learn how your comment data is processed.

Source: https://quantumcomputingreport.com/btq-technologies-and-ictk-finalize-architecture-for-next-generation-post-quantum-security-chip/

About the Author

ZadeNor AI Team is a leading expert in QUANTUM COMPUTING, contributing to cutting-edge research and development in the field.

Related Posts

DARPA Selects Atom Computing, Diraq, IBM, and IonQ for Final Stage C Verification under Quantum Benchmarking Initiative

DARPA Selects Atom Computing, Diraq, IBM, and IonQ for Final Stage C Verification under Quantum Benchmarking Initiative

DARPA has selected Atom Computing, Diraq, IBM, and IonQ for Stage C of its Quantum Benchmarking Initiative (QBI) to verify the performance of their fault-tolerant quantum computing architectures. This stage involves direct physical testing and empirical validation of their hardware, aiming to assess their potential for utility-scale operation by 2033. The chosen companies represent diverse qubit technologies, including neutral atoms, silicon spin qubits, superconducting transmons, and trapped ions. The post DARPA Selects Atom Computing, Diraq, IBM, and IonQ for Final Stage C Verification under Quantum Benchmarking Initiative appeared first on Quantum Computing Report. ]]>

220
5 min
Fermilab SQMS Center Identifies Microscopic Origins of Qubit Performance Variance Across Superconducting Transmons

Fermilab SQMS Center Identifies Microscopic Origins of Qubit Performance Variance Across Superconducting Transmons

Researchers at Fermilab's SQMS Center and collaborators identified microscopic material defects causing performance variations in superconducting qubits. Their study found that nanoscale fabrication geometries, surface oxides, and energy relaxation times are directly correlated. Specifically, single-nanometer shifts in surface oxide thickness, substrate trench depths below 20 nanometers, and sidewall etch profiles can cause up to a twofold variation in qubit performance. The post Fermilab SQMS Center Identifies Microscopic Origins of Qubit Performance Variance Across Superconducting Transmons appeared first on Quantum Computing Report. ]]>

176
5 min
KIST Delegation at Quantum World Congress 2026 Advances Korean Quantum Startup Ecosystem and U.S. Market Entry

KIST Delegation at Quantum World Congress 2026 Advances Korean Quantum Startup Ecosystem and U.S. Market Entry

A delegation from the Korea Institute of Science and Technology (KIST) attended the Quantum World Congress (QWC) 2026, fostering international partnerships and U.S. market entry for Korean quantum startups. KIST secured collaborations with entities like D-Wave Systems and Microsoft, aiming to bolster the quantum industry. Notably, OptiQ-Labs is set to establish a U.S. East Coast headquarters, marking a significant step in the global commercialization of Korean quantum technologies. The post KIST Delegation at Quantum World Congress 2026 Advances Korean Quantum Startup Ecosystem and U.S. Market Entry appeared first on Quantum Computing Report. ]]>

426
5 min