Arunashish Datta
Engineering · Purdue University West Lafayette
Publications
31
Citations
171
Est. group size
~7
Recurring co-author estimate
Active years
7
Publishing since 2020
Arunashish Datta's research focuses on how the human body itself can be used as a communication channel and power-delivery medium for wearable and implantable electronic devices. This includes techniques like electro-quasistatic (a low-frequency electric-field-based) body communication for touchscreens, structures, and implant-to-wearable links, as well as wireless power transfer methods for devices such as smart contact lenses. The work sits at the intersection of wearable computing, bioelectronics, and networked 'Internet of Bodies' systems.
Publication output has grown steadily over the last decade, rising from no recorded output before 2020 to a peak of around 7-8 papers per year in 2023-2024, with continued activity into 2025-2026.
Generated by claude-sonnet-5 from public bibliographic data · Jul 20, 2026
- Efficient communication channel for smart contact lens with resonant magnetoquasistatic coupling
Frontiers in Electronics · 2026
- Correction: Efficient communication channel for smart contact lens with resonant magnetoquasistatic coupling
Frontiers in Electronics · 2026
- Human-structure and human-structure-human interaction in electro-quasistatic regime
Communications Engineering · 2025
- Biophysical Modeling of Capacitive Electro-Quasistatic Human Body Powering
IEEE Transactions on Biomedical Engineering · 2025
- Touchscreen communication (ToSCom): Electro-Quasistatic body communication during touch sensing
Communications Engineering · 2025
- Author Correction: Human-structure and human-structure-human interaction in electro-quasistatic regime
Communications Engineering · 2025
- Effect of Nearby Metals on Electro-Quasistatic Human Body Communication
IEEE Transactions on Biomedical Engineering · 2025
- Effect of nearby Metals on Electro-Quasistatic Human Body Communication
arXiv (Cornell University) · 2025
- Invited: Human-Inspired Distributed Wearable AI
2024
- Exploring the Effects of Encapsulated Capacitive and Galvanic Transmitters for Implant-to-Wearable Scenarios in Human Body Communication
2024
- Implant-to-Wearable Communication through the Human Body: Exploring the Effects of Encapsulated Capacitive and Galvanic Transmitters
arXiv (Cornell University) · 2024
- Step-to-Charge: mW-scale power transfer to on-body devices for long channel (> 1m) with EQS Resonant Human Body Powering
arXiv (Cornell University) · 2024
- Efficient Communication and Powering for Smart Contact Lens with Resonant Magneto-Quasistatic Coupling
arXiv (Cornell University) · 2024
- Efficient Communication and Powering for Smart Contact Lens with Resonant Magneto-Quasistatic Coupling
2024
- Invited: Human-Inspired Distributed Wearable AI
arXiv (Cornell University) · 2024
- arXiv (Cornell University)×6
- IEEE Transactions on Biomedical Engineering×4
- Communications Engineering×3
- Frontiers in Electronics×2
- Journal of Animal Science×1
- Nirmoy Modak
Engineering · Purdue University West Lafayette
- Mayukh Nath
Engineering · Purdue University West Lafayette
- Gaurav Kumar K
Engineering · Purdue University West Lafayette
- Baibhab Chatterjee
Engineering · Purdue University West Lafayette
- David Yang
Engineering · Purdue University West Lafayette
This profile was generated automatically from public scholarly data (OpenAlex). Group size and activity levels are estimates derived from co-authorship patterns.
Last updated Jul 20, 2026.
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