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Natural Sugar-Assisted, Chemically Reinforced, Highly Durable Piezoorganic Nanogenerator with Superior Power Density for Self-Powered Wearable Electronics
被引:69
作者:
Maity, Kuntal
[1
]
Garain, Samiran
[1
,2
]
Henkel, Karsten
[2
,3
]
Schmeisser, Dieter
[2
]
Mandal, Dipankar
[1
,4
]
机构:
[1] Jadavpur Univ, Organ Nanopiezoelect Device Lab ONPDL, Dept Phys, Kolkata 700032, India
[2] Brandenburg Univ Technol Cottbus Senftenberg, Appl Phys & Sensor Technol, K Wachsmann Allee 17, D-03046 Cottbus, Germany
[3] Brandenburg Univ Technol Cottbus Senftenberg, Appl Phys & Semicond Spect, K Zuse Str 1, D-03046 Cottbus, Germany
[4] INST, Mohali 160062, India
关键词:
natural piezoelectric material;
sugar;
PVDF;
organic piezoelectric nanogenerator;
high performance and durability;
self-powered electronics;
ENERGY;
PHASE;
FILM;
PERFORMANCE;
COMPOSITE;
PIEZOELECTRICITY;
NANOPARTICLES;
TRANSPARENT;
FABRICATION;
NANOFIBERS;
D O I:
10.1021/acsami.8b15320
中图分类号:
TB3 [工程材料学];
学科分类号:
0805 ;
080502 ;
摘要:
Natural piezoelectric materials are of increasing interest, particularly for applications in biocompatible, implantable, and flexible electronic devices. In this paper, we introduce a cost-effective, easily available natural piezoelectric material, that is, sugar in the field of wearable piezoelectric nanogenerators (PNGs) where low electrical output, biocompatibility, and performance durability are still critical issues. We report on a high-performance piezoorganic nanogenerator (PONG) based on the hybridization of sugar-encapsulated polyvinylidene fluoride (PVDF) nanofiber webs (SGNFW). We explore the crucial role of single-crystal sugar having a fascinating structure along with the synergistic enhancement of piezoelectricity during nanoconfinement of sugar-interfaced macromolecular PVDF chains. As a consequence, the SGNFW-based PONG exhibits outstanding electricity generation capability (e.g., similar to 100 V under 10 kPa human finger impact and maximum power density of 33 mW/m(2)) in combination with sensitivity to abundantly available different mechanical sources (such as wind flow, vibration, personal electronics, and acoustic vibration). Consequently, it opens up suitability in multifunctional self-powered wearable sensor designs for realistic implementation. In addition, commercially available capacitors are charged up effectively by the PONG because of its rapid energy storage capability. The high performance of the PONG not only offers "battery-free" energy generation (several portable units of light-emitting diodes and a liquid crystal display screen are powered up without using external storage) but also promises its use in wireless signal transmitting systems, which widens the potential in personal health care monitoring. Furthermore, owing to the geometrical stress confinement effect, the PONG is proven to be a highly durable power-generating device validated by stability test over 10 weeks. Therefore, the organic nanogenerator would be a convenient solution for portable personal electronic devices that are expected to operate in a self-powered manner.
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页码:44018 / 44032
页数:15
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