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Department of Robotics and Mechatronics Engineering
Neuro-Interfaced Robotics Lab
1. Journal Articles
Unleashing the potential of morphotropic phase boundary based hybrid triboelectric–piezoelectric nanogenerator
Hajra, Sugato
;
Padhan, Aneeta Manjari
;
Panigrahi, Basanta Kumar
;
Pakawanit, Phakkhananan
;
Jagličić, Zvonko
;
Vittayakorn, Naratip
;
Mishra, Yogendra Kumar
;
Lee, Sanghoon
;
Kim, Hoe Joon
Department of Robotics and Mechatronics Engineering
Nano Materials and Devices Lab
1. Journal Articles
Department of Robotics and Mechatronics Engineering
Neuro-Interfaced Robotics Lab
1. Journal Articles
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Title
Unleashing the potential of morphotropic phase boundary based hybrid triboelectric–piezoelectric nanogenerator
Issued Date
2024-07
Citation
Hajra, Sugato. (2024-07). Unleashing the potential of morphotropic phase boundary based hybrid triboelectric–piezoelectric nanogenerator. Journal of Materiomics, 10(4), 792–802. doi: 10.1016/j.jmat.2023.09.011
Type
Article
Author Keywords
Acceleration
;
Wave energy
;
Lead-free
;
Morphotropic
Keywords
ENERGY
;
RAMAN-SCATTERING
;
ENHANCEMENT
ISSN
2352-8478
Abstract
Morphotropic phase boundary (MPB)-based ceramics are excellent for energy harvesting due to their enhanced physical properties at phase boundaries, broad operating temperature range, and ability to customize properties for efficient conversion of mechanical energy into electrical energy. In this work, Bi1–xNaxFe1–xNbxO3 (x = 0.20, 0.30, 0.32 and 0.40, BNFNO abbreviation) based ceramics were synthesized using a solid-state route and blended with Polydimethylsiloxane (PDMS) to achieve flexible composites. Various material characterization and energy harvesting were performed by designing a hybrid piezoelectric (PENG)-triboelectric (TENG) device. The voltage and current of PENG, TENG, and hybrid bearing same device area (2 cm × 2 cm) were recorded as 11 V/0.3 μA; 60 V/0.7 μA; 110 V/2.2 μA. The strategies for enhancing the output performance of the hybrid device were evaluated, such as increased surface area (creating micro-roughness and porous morphology) and increasing electrode size and multi-layer hybrid device formation. The self-powered acceleration monitoring was demonstrated using the hybrid device. Further, the low-frequency-based wave energy is converted into electrical energy, confirming the usage of hybrid PENG-TENG devices as a base for battery-free sensors and blue energy harvesting. © 2023 The Authors
URI
http://hdl.handle.net/20.500.11750/47506
DOI
10.1016/j.jmat.2023.09.011
Publisher
Elsevier
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