| Literature DB >> 36201086 |
Xiao Han1,2, Yun Ji1,2, Li Wu1,3, Yanlong Xia1,3, Chris R Bowen4, Ya Yang5,6,7.
Abstract
Coupled nanogenerators have been a research hotspot due to their ability to harvest a variety of forms of energy such as light, mechanical and thermal energy and achieve a stable direct current output. Ferroelectric films are frequently investigated for photovoltaic applications due to their unique photovoltaic properties and bandgap-independent photovoltage, while the flexoelectric effect is an electromechanical property commonly found in solid dielectrics. Here, we effectively construct a new form of coupled nanogenerator based on a flexible BiFeO3 ferroelectric film that combines both flexoelectric and photovoltaic effects to successfully harvest both light and vibration energies. This device converts an alternating current into a direct current and achieves a 6.2% charge enhancement and a 19.3% energy enhancement to achieve a multi-dimensional "1 + 1 > 2" coupling enhancement in terms of current, charge and energy. This work proposes a new approach to the coupling of multiple energy harvesting mechanisms in ferroelectric nanogenerators and provides a new strategy to enhance the transduction efficiency of flexible functional devices.Entities:
Keywords: Coupled nanogenerators; Energy collection; Ferroelectric film; Flexoelectric effect; Photovoltaic effect
Year: 2022 PMID: 36201086 PMCID: PMC9537400 DOI: 10.1007/s40820-022-00943-0
Source DB: PubMed Journal: Nanomicro Lett ISSN: 2150-5551
Fig. 1Design of LNO/BFO/ITO nanogenerator for scavenging energies. a Schematic of the operation of the coupled nanogenerator based on LNO/BFO/ITO and the corresponding signal schematic. b SEM image of the cross section of the device. c Optical image of the device, inset schematic showing the device after bending
Fig. 2Photovoltaic and flexoelectric performance of the LNO/BFO/ITO device. a Short-circuit currents for devices illuminated with different light intensities at 365, 450 and 515 nm. b Output current of the device as a function of the light intensity caused by the photoelectric effect. c Load-dependent photovoltaic, photovoltaic-flexoelectric output power for devices (4.5 mW cm−2). d Output current of the device at different vibration frequencies. e Output current of a device as a function of frequency caused by the flexoelectric effect. f Load-dependent output current and power
Fig. 3Influence of photoelectric-flexoelectric coupling effects on the electrical properties of LNO/BFO/ITO. a Short-circuit current variation in devices caused by light-vibration coupling. b Output current of the device as a function of light intensity caused by the photoelectric-flexoelectric effect. c Comparison of short-circuit currents and output powers of devices caused by light and light-vibration coupling (4.5 mW cm−2). d Comparison of collected charges under different working conditions
Fig. 4Performance evaluation of LNO/BFO/ITO photoelectric-flexoelectric coupling. a Charge enhancement ratio E as a function of light intensity. Comparison of b signal and c–e Yang coupling factor of the device under 450 nm illumination (4.5 mW cm−2). Yang coupling factors of c K charges and d K energies
Fig. 5Working principle of LNO/BFO/ITO coupled nanogenerators. a Representative output curve of the device with simultaneous light and vibration operation. Mechanisms of device operation at b flat, c light, d light and vibration