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Reconfigurable Physical Unclonable Function-Based Cryptographic Scheme Based on Memory-Enabled GFET Modulators
Yichong Ren1, Chia-Heng Sun1, Mohan De Silva2
1Department of Electrical and Computer Engineering, University of Illinois Chicago, Chicago, Illinois, USA.
Small Methods
|July 28, 2026
Summary
A new strong radio-frequency (RF) physically unclonable function (PUF) using graphene field-effect transistors (GFETs) offers enhanced hardware security for the Internet of Things (IoT). This GFET PUF provides robust, unique, and reliable encryption keys, adaptable to various conditions.
Area of Science:
- Materials Science
- Electrical Engineering
- Cybersecurity
Background:
- The Internet of Things (IoT) generates vast amounts of data, increasing vulnerability to cyberattacks.
- Existing hardware security primitives face challenges in providing robust protection for sensitive information.
Purpose of the Study:
- To introduce a novel hardware security primitive: a strong radio-frequency (RF) physically unclonable function (PUF).
- To leverage graphene field-effect transistors (GFETs) for enhanced security applications in the IoT era.
Main Methods:
- Development of a GFET-based harmonic transponder for the RF PUF.
- Demonstration of PUF reconfigurability through gate voltage, frequency tuning, and doping state adjustments.
- Implementation of an AI-assisted classification framework using a 1D-CNN for device authentication.
Main Results:
- The GFET PUF demonstrated excellent randomness, uniqueness, and reliability for encryption.
- Reconfigurability enhanced PUF robustness against environmental factors.
- AI framework achieved robust device recognition across multiple operating conditions via contrastive learning and cosine similarity.
Conclusions:
- The proposed GFET PUF offers a significant advancement in hardware security for IoT devices.
- This technology presents a new pathway for analog PUFs and cryptographic applications.
- The GFET PUF enhances data security and device authentication in connected systems.
