Jananipriya Boominathan
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Also affiliated: Institute of Engineering (2025); Dr. NTR University of Health Sciences (2025)
Research Areas
Biography and Research Information
OverviewAI-generated summary
Jananipriya Boominathan's research focuses on the development of self-powered electronic devices, particularly for wearable applications. Her work investigates the use of piezoelectric and triboelectric nanogenerators to harvest energy from ambient sources, aiming to create sustainable and battery-free systems. Current projects explore applications in self-powered robotics, impact monitoring, and sleep tracking.
Her publications highlight advancements in interfacial engineering for enhanced energy harvesting efficiency. Specific research areas include the performance of antimony-doped and Zr-doped BaTiO₃ materials in piezoelectric nanogenerators for on-body sensing and wireless monitoring. Boominathan also contributes to the field of energy storage with research on self-charging supercapacitors for micro and nano systems.
Metrics
- h-index: 4
- Publications: 7
- Citations: 47
Selected Publications
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A flexible Zr-doped BaTiO 3 /PDMS piezoelectric nanogenerator for self-powered energy harvesting and real-time wireless impact monitoring applications (2026)
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Author response for "Flexible Zr-Doped BaTiO₃/PDMS Piezoelectric Nanogenerator for Self-Powered Energy Harvesting and Real-Time Wireless Impact Monitoring Applications" (2026)
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Self-Powered Sleep Tracker: A Battery-Free Wearable Device Using Flexible Piezoelectric Nanogenerator (2026)
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Revolutionizing energy storage: Self-charging supercapacitors toward self-powered micro and nano systems (2025)
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Triboelectric self-powered soft robotics: paving the way towards a sustainable future (2025)
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Interfacial Engineering in Wearable Piezoelectric Nanogenerators: A Path to Sustainable Future in Self‐Powered Electronics (2025)
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Unraveling the Energy‐Harvesting Performance of Antimony‐Doped BaTiO3 Toward Self‐Powered on‐Body Wearable Impact Sensor (2025)
Collaboration Network
Top Collaborators
- Revolutionizing energy storage: Self-charging supercapacitors toward self-powered micro and nano systems
- Interfacial Engineering in Wearable Piezoelectric Nanogenerators: A Path to Sustainable Future in Self‐Powered Electronics
- Triboelectric self-powered soft robotics: paving the way towards a sustainable future
- Unraveling the Energy‐Harvesting Performance of Antimony‐Doped BaTiO3 Toward Self‐Powered on‐Body Wearable Impact Sensor
- Self-Powered Sleep Tracker: A Battery-Free Wearable Device Using Flexible Piezoelectric Nanogenerator
Showing 5 of 7 shared publications
- Revolutionizing energy storage: Self-charging supercapacitors toward self-powered micro and nano systems
- Interfacial Engineering in Wearable Piezoelectric Nanogenerators: A Path to Sustainable Future in Self‐Powered Electronics
- Triboelectric self-powered soft robotics: paving the way towards a sustainable future
- Unraveling the Energy‐Harvesting Performance of Antimony‐Doped BaTiO3 Toward Self‐Powered on‐Body Wearable Impact Sensor
- Self-Powered Sleep Tracker: A Battery-Free Wearable Device Using Flexible Piezoelectric Nanogenerator
Showing 5 of 7 shared publications
- Revolutionizing energy storage: Self-charging supercapacitors toward self-powered micro and nano systems
- Interfacial Engineering in Wearable Piezoelectric Nanogenerators: A Path to Sustainable Future in Self‐Powered Electronics
- Triboelectric self-powered soft robotics: paving the way towards a sustainable future
- Unraveling the Energy‐Harvesting Performance of Antimony‐Doped BaTiO3 Toward Self‐Powered on‐Body Wearable Impact Sensor
- Revolutionizing energy storage: Self-charging supercapacitors toward self-powered micro and nano systems
- Interfacial Engineering in Wearable Piezoelectric Nanogenerators: A Path to Sustainable Future in Self‐Powered Electronics
- Triboelectric self-powered soft robotics: paving the way towards a sustainable future
- Unraveling the Energy‐Harvesting Performance of Antimony‐Doped BaTiO3 Toward Self‐Powered on‐Body Wearable Impact Sensor
- Revolutionizing energy storage: Self-charging supercapacitors toward self-powered micro and nano systems
- Interfacial Engineering in Wearable Piezoelectric Nanogenerators: A Path to Sustainable Future in Self‐Powered Electronics
- Triboelectric self-powered soft robotics: paving the way towards a sustainable future
- Unraveling the Energy‐Harvesting Performance of Antimony‐Doped BaTiO3 Toward Self‐Powered on‐Body Wearable Impact Sensor
- Interfacial Engineering in Wearable Piezoelectric Nanogenerators: A Path to Sustainable Future in Self‐Powered Electronics
- Unraveling the Energy‐Harvesting Performance of Antimony‐Doped BaTiO3 Toward Self‐Powered on‐Body Wearable Impact Sensor
- Self-Powered Sleep Tracker: A Battery-Free Wearable Device Using Flexible Piezoelectric Nanogenerator
- Revolutionizing energy storage: Self-charging supercapacitors toward self-powered micro and nano systems
- Unraveling the Energy‐Harvesting Performance of Antimony‐Doped BaTiO3 Toward Self‐Powered on‐Body Wearable Impact Sensor
- Unraveling the Energy‐Harvesting Performance of Antimony‐Doped BaTiO3 Toward Self‐Powered on‐Body Wearable Impact Sensor
- Self-Powered Sleep Tracker: A Battery-Free Wearable Device Using Flexible Piezoelectric Nanogenerator
- Revolutionizing energy storage: Self-charging supercapacitors toward self-powered micro and nano systems
- Interfacial Engineering in Wearable Piezoelectric Nanogenerators: A Path to Sustainable Future in Self‐Powered Electronics
- Author response for "Flexible Zr-Doped BaTiO₃/PDMS Piezoelectric Nanogenerator for Self-Powered Energy Harvesting and Real-Time Wireless Impact Monitoring Applications"
- A flexible Zr-doped BaTiO 3 /PDMS piezoelectric nanogenerator for self-powered energy harvesting and real-time wireless impact monitoring applications
- Unraveling the Energy‐Harvesting Performance of Antimony‐Doped BaTiO3 Toward Self‐Powered on‐Body Wearable Impact Sensor
- Interfacial Engineering in Wearable Piezoelectric Nanogenerators: A Path to Sustainable Future in Self‐Powered Electronics
- Interfacial Engineering in Wearable Piezoelectric Nanogenerators: A Path to Sustainable Future in Self‐Powered Electronics
- Triboelectric self-powered soft robotics: paving the way towards a sustainable future
- Revolutionizing energy storage: Self-charging supercapacitors toward self-powered micro and nano systems
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