Multimode Optical Interconnects on Silicon Interposer Enable Confidential Hardware-to-Hardware Communication

Author:

Zhang Qian1ORCID,Charania Sujay2ORCID,Rothe Stefan1,Koukourakis Nektarios1ORCID,Neumann Niels3ORCID,Plettemeier Dirk2,Czarske Juergen W.14ORCID

Affiliation:

1. Laboratory of Measurement and Sensor System Technique, Faculty of Electrical and Computer Engineering, TU Dresden, 01069 Dresden, Germany

2. Chair of Radio Frequency and Photonics Engineering, Faculty of Electrical and Computer Engineering, TU Dresden, 01069 Dresden, Germany

3. Institute for Electrical Information Technology, TU Clausthal, 38678 Clausthal-Zellerfeld, Germany

4. Institute of Applied Physics, School of Science, TU Dresden, 01069 Dresden, Germany

Abstract

Following Moore’s law, the density of integrated circuits is increasing in all dimensions, for instance, in 3D stacked chip networks. Amongst other electro-optic solutions, multimode optical interconnects on a silicon interposer promise to enable high throughput for modern hardware platforms in a restricted space. Such integrated architectures require confidential communication between multiple chips as a key factor for high-performance infrastructures in the 5G era and beyond. Physical layer security is an approach providing information theoretic security among network participants, exploiting the uniqueness of the data channel. We experimentally project orthogonal and non-orthogonal symbols through 380 μm long multimode on-chip interconnects by wavefront shaping. These interconnects are investigated for their uniqueness by repeating these experiments across multiple channels and samples. We show that the detected speckle patterns resulting from modal crosstalk can be recognized by training a deep neural network, which is used to transform these patterns into a corresponding readable output. The results showcase the feasibility of applying physical layer security to multimode interconnects on silicon interposers for confidential optical 3D chip networks.

Funder

German Research Foundation

Federal Ministry of Education and Research of Germany

QUIET

Publisher

MDPI AG

Subject

Electrical and Electronic Engineering,Biochemistry,Instrumentation,Atomic and Molecular Physics, and Optics,Analytical Chemistry

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