Title :
Cocoon-PUF, a novel mechatronic secure element technology
Author :
Kreft, Heinz ; Adi, Wael
Author_Institution :
Christian-Albrechts-Univ. zu Kiel, Kiel, Germany
Abstract :
A new Physical Unclonable Function (PUF) technology is proposed. The technology is targeting the implementation of a highly secure unclonable electromechanical device. The resulting system includes a physical unit providing identification properties mutually-dependent on both microelectronic and mechanical components. The technology is based on combining very high frequency wave propagation, scattering and reflection based on dielectric and/or magnetic particles or composites (potted) in matrices of a closed medium with mechanical spatial factors related to encapsulation material. It is assigned the name Cocoon-based Physical Unclonable Function (Cocoon-PUF). The resulting fingerprint properties are related to the transmitters and sensors integrated on the chip die, the spatial randomized distribution in the encapsulation matrix (potting material), offering unpredictable and hence practically impossible to clone or duplicate mechatronic units. The targeted Cocoon-PUF is to build rigging-resistant non-silicon based mechanical footprints in tamper resistant packaging. Additionally, the proposed technology fits to the tendency and requirement of protection against Electro-Magnetic-Pulse (EMP) surges (as TEMPEST design), which can be seen as an additional pleasant side effect of Electro-Magnetic-Compatibility (EMC) of the Cocoon protection principle. The paper presents the basic technology principles and shows first promising prototyping results of that new technology.
Keywords :
electromagnetic pulse; integrated circuits; mechatronics; Cocoon protection principle; Cocoon-PUF; Cocoon-based physical unclonable function; TEMPEST design; chip die; composites; dielectric particles; electromagnetic compatibility; electromagnetic pulse surges; encapsulation material; encapsulation matrix; fingerprint property; magnetic particles; mechanical component; mechanical spatial factors; mechatronic secure element technology; mechatronic units; microelectronic component; potting material; rigging-resistant nonsilicon based mechanical footprints; sensors; spatial randomized distribution; tamper resistant packaging; unclonable electromechanical device; very high frequency wave propagation; Cryptography; Data mining; Fingerprint recognition; Hardware; Materials; Sensors; Applied Cryptography; Materials Science; Mechatronic Security; Microwave Sensing Components; Nano-Composites; Physical Unclonable Function Technology; UWB Digital Signal Sensing and Processing; Unclonable Mechatronic Identity;
Conference_Titel :
Adaptive Hardware and Systems (AHS), 2012 NASA/ESA Conference on
Conference_Location :
Erlangen
Print_ISBN :
978-1-4673-1915-7
Electronic_ISBN :
978-1-4673-1914-0
DOI :
10.1109/AHS.2012.6268655