Abstract
In this work, an all-fiber acoustoelectric nanogenerator (AAPNG) is fabricated by the hydrated metal salt (MgCl2·6H2O) (Mg-salt) reinforced polyvinylidene fluoride (PVDF-Mg) nanofibers as an active layer and interlocked conducting micro-fiber-based electrode for converting mechanical and acoustic energies into useful electrical power. It has been found that the electroactive phase content (∼84%) is enhanced in PVDF-Mg nanofibers due to the inter-molecular H-bonding moieties, the arrangement of the macromolecular chains of polyvinylidene fluoride (PVDF) in a layer-by-layer fashion, and the existence of an interfacial interaction between the Mg-salt and dimethylformamide (DMF) resonance structure and -CF2dipoles of PVDF. As a result, PVDF-Mg nanofibers possess superior piezoelectric charge coefficient (d33≈ 33.6 pC N−1) and figure of merit (FoM ≈ 12.7 × 10−12Pa−1) with respect to neat PVDF nanofibers (d33≈ 22 pC N−1and FoM ≈ 9.7 × 10−12Pa−1). Benefitting from the ultrafast response time of ∼6 ms, AAPNG serves as an acoustoelectric sensor detecting low-frequency sound with an acoustic sensitivity (Sa) of 10 V Pa−1, which is superior to that of neat PVDF nanofibers (Sa∼ 266 mV Pa−1). With the overall acoustoelectric energy conversion efficiency of ∼1.3%, AAPNG powers a range of commercial electronic gadgets, such as LEDs, capacitors, and LCDs. This makes it perfectly suitable for noise detection purposes as well as self-powered microphone applications. Additionally, AAPNGs can be realized as human motion monitoring systems, such as finger motion sensors that pave the way of futuristic robotic-based applications.
| Original language | English |
|---|---|
| Pages (from-to) | 1003-1013 |
| Number of pages | 11 |
| Journal | Sustainable Energy and Fuels |
| Volume | 5 |
| Issue number | 4 |
| DOIs | |
| Publication status | Published - 21 Feb 2021 |
| Externally published | Yes |
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