The benefits of combining 1D and 3D nanofillers in a piezocomposite nanogenerator for biomechanical energy harvesting
HANANI, Zouhair
Laboratoire des Matériaux Innovants, Energie et Développement Durable [Marrakech] [IMED-Lab ]
Institut de Chimie de la Matière Condensée de Bordeaux [ICMCB]
Jozef Stefan Institute [Ljubljana] [IJS]
Laboratoire des Matériaux Innovants, Energie et Développement Durable [Marrakech] [IMED-Lab ]
Institut de Chimie de la Matière Condensée de Bordeaux [ICMCB]
Jozef Stefan Institute [Ljubljana] [IJS]
IZANZAR, Ilyasse
Laboratoire des Matériaux Innovants, Energie et Développement Durable [Marrakech] [IMED-Lab ]
Laboratoire des Matériaux Innovants, Energie et Développement Durable [Marrakech] [IMED-Lab ]
MERSELMIZ, Soukaina
Laboratoire des Matériaux Innovants, Energie et Développement Durable [Marrakech] [IMED-Lab ]
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Laboratoire des Matériaux Innovants, Energie et Développement Durable [Marrakech] [IMED-Lab ]
HANANI, Zouhair
Laboratoire des Matériaux Innovants, Energie et Développement Durable [Marrakech] [IMED-Lab ]
Institut de Chimie de la Matière Condensée de Bordeaux [ICMCB]
Jozef Stefan Institute [Ljubljana] [IJS]
Laboratoire des Matériaux Innovants, Energie et Développement Durable [Marrakech] [IMED-Lab ]
Institut de Chimie de la Matière Condensée de Bordeaux [ICMCB]
Jozef Stefan Institute [Ljubljana] [IJS]
IZANZAR, Ilyasse
Laboratoire des Matériaux Innovants, Energie et Développement Durable [Marrakech] [IMED-Lab ]
Laboratoire des Matériaux Innovants, Energie et Développement Durable [Marrakech] [IMED-Lab ]
MERSELMIZ, Soukaina
Laboratoire des Matériaux Innovants, Energie et Développement Durable [Marrakech] [IMED-Lab ]
Laboratoire des Matériaux Innovants, Energie et Développement Durable [Marrakech] [IMED-Lab ]
AMJOUD, M'Barek
Laboratoire des Matériaux Innovants, Energie et Développement Durable [Marrakech] [IMED-Lab ]
Laboratoire des Matériaux Innovants, Energie et Développement Durable [Marrakech] [IMED-Lab ]
MEZZANE, Daoud
Laboratoire des Matériaux Innovants, Energie et Développement Durable [Marrakech] [IMED-Lab ]
Laboratoire de Physique de la Matière Condensée - UR UPJV 2081 [LPMC]
Laboratoire des Matériaux Innovants, Energie et Développement Durable [Marrakech] [IMED-Lab ]
Laboratoire de Physique de la Matière Condensée - UR UPJV 2081 [LPMC]
SAADOUNE, Ismael
Université Mohammed VI Polytechnique = Mohammed VI Polytechnic University [Ben Guerir] [UM6P]
Laboratoire des Matériaux Innovants, Energie et Développement Durable [Marrakech] [IMED-Lab ]
Université Mohammed VI Polytechnique = Mohammed VI Polytechnic University [Ben Guerir] [UM6P]
Laboratoire des Matériaux Innovants, Energie et Développement Durable [Marrakech] [IMED-Lab ]
LAHCINI, Mohammed
Université Mohammed VI Polytechnique = Mohammed VI Polytechnic University [Ben Guerir] [UM6P]
Laboratoire des Matériaux Innovants, Energie et Développement Durable [Marrakech] [IMED-Lab ]
Université Mohammed VI Polytechnique = Mohammed VI Polytechnic University [Ben Guerir] [UM6P]
Laboratoire des Matériaux Innovants, Energie et Développement Durable [Marrakech] [IMED-Lab ]
LUK'YANCHUK, Igor A.
Laboratoire de Physique de la Matière Condensée - UR UPJV 2081 [LPMC]
Department of Building Materials
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Laboratoire de Physique de la Matière Condensée - UR UPJV 2081 [LPMC]
Department of Building Materials
Langue
en
Article de revue
Ce document a été publié dans
Nanoscale Advances. 2022, vol. 4, n° 21, p. 4658-4668
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Résumé en anglais
Mechanical energy harvesting using piezoelectric nanogenerators (PNGs) offers an attractive solution for driving low-power portable devices and self-powered electronic systems. Here, we designed an eco-friendly and flexible ...Lire la suite >
Mechanical energy harvesting using piezoelectric nanogenerators (PNGs) offers an attractive solution for driving low-power portable devices and self-powered electronic systems. Here, we designed an eco-friendly and flexible piezocomposite nanogenerator (c-PNG) based on H-2(Zr0.1Ti0.9)(3)O-7 nanowires (HZTO-nw) and Ba0.85Ca0.15Zr0.10Ti0.90O3 multipods (BCZT-mp) as fillers and polylactic acid (PLA) as a biodegradable polymer matrix. The effects of the applied stress amplitude, frequency and pressing duration on the electric outputs in the piezocomposite nanogenerator (c-PNG) device were investigated by simultaneous recording of the mechanical input and the electrical outputs. The fabricated c-PNG shows a maximum output voltage, current and volumetric power density of 11.5 V, 0.6 mu A and 9.2 mW cm(-3), respectively, under cyclic finger imparting. A high-pressure sensitivity of 0.86 V kPa(-1) (equivalent to 3.6 V N-1) and fast response time of 45 ms were obtained in the dynamic pressure sensing. Besides this, the c-PNG demonstrates high-stability and durability of the electrical outputs for around three months, and can drive commercial electronics (charging capacitor, glowing light-emitting diodes and powering a calculator). Multi-physics simulations indicate that the presence of BCZT-mp is crucial in enhancing the piezoelectric response of the c-PNG. Accordingly, this work reveals that combining 1D and 3D fillers in a polymer composite-based PNG could be beneficial in improving the mechanical energy harvesting performances in flexible piezoelectric nanogenerators for application in electronic skin and wearable devices.< Réduire
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