• Journal of Inorganic Materials
  • Vol. 36, Issue 9, 919 (2021)
Yinben GUO1, Zixi CHEN1, Hongzhi WANG2, and Qinghong ZHANG3、*
Author Affiliations
  • 11. College of Materials Engineering, Shanghai University of Engineering Science, Shanghai 201620, China
  • 22. State Key Laboratory for Modification of Chemical Fibers and Polymer Materials, College of Materials Science and Engineering, Donghua University, Shanghai 201620, China
  • 33. Engineering Research Center of Advanced Glasses Manufacturing Technology, Ministry of Education, Donghua University, Shanghai 201620, China
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    DOI: 10.15541/jim20200742 Cite this Article
    Yinben GUO, Zixi CHEN, Hongzhi WANG, Qinghong ZHANG. Progress of Inorganic Filler Based Composite Films for Triboelectric Nanogenerators[J]. Journal of Inorganic Materials, 2021, 36(9): 919 Copy Citation Text show less
    References

    [1] R FAN F, Q TIAN Z, L WANG Z. Flexible triboelectric generator. Nano Energy, 1, 328-334(2012).

    [2] J WANG, H ZHANG, Y XIE et al. Smart network node based on hybrid nanogenerator for self-powered multifunctional sensing. Nano Energy, 33, 418-426(2017).

    [3] L ZHANG, B ZHANG, J CHEN et al. Lawn structured triboelectric nanogenerators for scavenging sweeping wind energy on rooftops. Adv. Mater., 28, 1650-1656(2016).

    [4] B CHEN, Y YANG, L WANG Z. Scavenging wind energy by triboelectric nanogenerators. Adv. Energy Mater., 8, 1702649(2018).

    [5] D CHEN B, W TANG, C HE et al. Water wave energy harvesting and self-powered liquid-surface fluctuation sensing based on bionic-jellyfish triboelectric nanogenerator. Mater. Today, 21, 88-97(2018).

    [6] X WANG, Z WEN, H GUO et al. Fully packaged blue energy harvester by hybridizing a rolling triboelectric nanogenerator and an electromagnetic generator. ACS Nano, 10, 11369-11376(2016).

    [7] F MA Y, M TONG Z, M WANG et al. Triboelectric nanogenerator based on graphene forest electrodes. J. Inorg. Mater., 34, 839-843(2019).

    [8] X FENG, Y ZHANG, L KANG et al. Integrated energy storage system based on triboelectric nanogenerator in electronic devices. Front. Chem. Sci. Eng., 15, 238-250(2021).

    [9] A MAMUN M A, R YUCE M. Recent progress in nanomaterial enabled chemical sensors for wearable environmental monitoring applications. Adv. Funct. Mater., 30, 2005703(2020).

    [10] M ZHU, T HE, C LEE. Technologies toward next generation human machine interfaces: from machine learning enhanced tactile sensing to neuromorphic sensory systems. Appl. Phys. Rev., 7, 031305(2020).

    [11] A CHEN, C ZHANG, G ZHU et al. Polymer materials for high-performance triboelectric nanogenerators. Adv. Sci., 7, 2000186(2020).

    [12] A BURGO T, R DUCATI T, R FRANCISCO K et al. Triboelectricity: macroscopic charge patterns formed by self-arraying ions on polymer surfaces. Langmuir, 28, 7407-7416(2012).

    [13] G ZHU, S ZHOU Y, P BAI et al. A shape-adaptive thin-film-based approach for 50% high-efficiency energy generation through micro-grating sliding electrification. Adv. Mater., 26, 3788-3796(2014).

    [14] Y XIE, S WANG, S NIU et al. Grating-structured freestanding triboelectric-layer nanogenerator for harvesting mechanical energy at 85% total conversion efficiency. Adv. Mater., 26, 6599-6607(2014).

    [15] W DENG, B ZHANG, L JIN et al. Enhanced performance of ZnO microballoon arrays for a triboelectric nanogenerator. Nanotechnology, 28, 135401(2017).

    [16] L SU, X ZHAO Z, Y LI H et al. High-performance organolead halide perovskite-based self-powered triboelectric photodetector. ACS Nano, 9, 11310-11316(2015).

    [17] X YUE, Y XI, C HU et al. Enhanced output-power of nanogenerator by modifying PDMS film with lateral ZnO nanotubes and Ag nanowires. RSC Adv., 5, 32566-32571(2015).

    [18] C WU, W KIM T, H PARK J et al. Enhanced triboelectric nanogenerators based on MoS2 monolayer nanocomposites acting as electron-acceptor layers. ACS Nano, 11, 8356-8363(2017).

    [19] Z LI G, G WANG G, M YE D et al. High-performance transparent and flexible triboelectric nanogenerators based on PDMS-PTFE composite films. Adv. Electron. Mater., 5, 1800846(2019).

    [20] N KAUR, J BAHADUR, V PANWAR et al. Effective energy harvesting from a single electrode based triboelectric nanogenerator. Sci. Rep., 6, 38835(2016).

    [21] H LIU, Y FENG, J SHAO et al. Self-cleaning triboelectric nanogenerator based on TiO2 photocatalysis. Nano Energy, 70, 104499(2020).

    [22] K SHI, H ZOU, B SUN et al. Dielectric modulated cellulose paper/PDMS-based triboelectric nanogenerators for wireless transmission and electropolymerization applications. Adv. Funct. Mater., 30, 1904536(2019).

    [23] X KANG, C PAN, Y CHEN et al. Boosting performances of triboelectric nanogenerators by optimizing dielectric properties and thickness of electrification layer. RSC Adv., 10, 17752-17759(2020).

    [24] G WANG, Y XI, H XUAN et al. Hybrid nanogenerators based on triboelectrification of a dielectric composite made of lead-free ZnSnO3 nanocubes. Nano Energy, 18, 28-36(2015).

    [25] X HE, H GUO, X YUE et al. Improving energy conversion efficiency for triboelectric nanogenerator with capacitor structure by maximizing surface charge density. Nanoscale, 7, 1896-1903(2015).

    [26] R WEN, J GUO, A YU et al. Remarkably enhanced triboelectric nanogenerator based on flexible and transparent monolayer titania nanocomposite. Nano Energy, 50, 140-147(2018).

    [27] P CUI, K PARIDA, F LIN M et al. Transparent, flexible cellulose nanofibril-phosphorene hybrid paper as triboelectric nanogenerator. Adv. Mater. Interfaces, 4, 1700651(2017).

    [28] F DIAZ A, M FELIX-NAVARRO R. A semi-quantitative triboelectric series for polymeric materials: the influence of chemical structure and properties. J. Electrost., 62, 277-290(2004).

    [29] L WANG Z, C WANG A. On the origin of contact-electrification. Mater. Today, 30, 34-51(2019).

    [30] C WU, C WANG A, W DING et al. Triboelectric nanogenerator: a foundation of the energy for the new era. Adv. Energy Mater., 9, 1802906(2019).

    [31] T BAYTEKIN H, Z PATASHINSKI A, M BRANICKI et al. The mosaic of surface charge in contact electrification. Science, 333, 308-12(2011).

    [32] Y GUO, K LI, C HOU et al. Fluoroalkylsilane-modified textile-based personal energy management device for multifunctional wearable applications. ACS Appl. Mater. Interfaces, 8, 4676-4683(2016).

    [33] X CHEN, X PU, T JIANG et al. Tunable optical modulator by coupling a triboelectric nanogenerator and a dielectric elastomer. Adv. Funct. Mater., 27, 1603788(2017).

    [34] D KIM, J PARK S, B JEON S et al. A triboelectric sponge fabricated from a cube sugar template by 3D soft lithography for superhydrophobicity and elasticity. Adv. Electron. Mater., 2, 1500331(2016).

    [35] S SRIPHAN, N VITTAYAKORN. Facile roughness fabrications and their roughness effects on electrical outputs of the triboelectric nanogenerator. Smart Mater. Struct., 27, 105026(2018).

    [36] H SINGH H, N KHARE. Improved performance of ferroelectric nanocomposite flexible film based triboelectric nanogenerator by controlling surface morphology, polarizability, and hydrophobicity. Energy, 178, ?765-771(2019).

    [37] W GONG, C HOU, Y GUO et al. A wearable, fibroid, self-powered active kinematic sensor based on stretchable sheath-core structural triboelectric fibers. Nano Energy, 39, 673-683(2017).

    [38] W YANG, W GONG, C HOU et al. All-fiber tribo-ferroelectric synergistic electronics with high thermal-moisture stability and comfortability. Nat. Commun., 10, 5541(2019).

    [39] W GONG, C HOU, J ZHOU et al. Continuous and scalable manufacture of amphibious energy yarns and textiles. Nat. Commun., 10, 868(2019).

    [40] X CHEN, J XIONG, K PARIDA et al. Transparent and stretchable bimodal triboelectric nanogenerators with hierarchical micro- nanostructures for mechanical and water energy harvesting. Nano Energy, 64, 103904(2019).

    [41] W SEUNG, J YOON H, Y KIM T et al. Boosting power-generating performance of triboelectric nanogenerators via artificial control of ferroelectric polarization and dielectric properties. Adv. Energy Mater., 7, 1600988(2017).

    [42] M NIU S, L WANG Z. Theoretical systems of triboelectric nanogenerators. Nano Energy, 14, 161-192(2015).

    [43] Y SHAO, P FENG C, W DENG B et al. Facile method to enhance output performance of bacterial cellulose nanofiber based triboelectric nanogenerator by controlling micro-nano structure and dielectric constant. Nano Energy, 62, 620-627(2019).

    [44] J CHEN, H GUO, X HE et al. Enhancing performance of triboelectric nanogenerator by filling high dielectric nanoparticles into sponge PDMS film. ACS Appl. Mater. Interfaces, 8, 736-744(2016).

    [45] Y LEE K, D KIM, H LEE J et al. Unidirectional high-power generation via stress-induced dipole alignment from ZnSnO3 nanocubes/polymer hybrid piezoelectric nanogenerator. Adv. Funct. Mater., 24, 37-43(2014).

    [46] Z FANG, H CHAN K, X LU et al. Surface texturing and dielectric property tuning toward boosting of triboelectric nanogenerator performance. J. Mater. Chem. A, 6, 52-57(2018).

    [47] R WEN, J GUO, A YU et al. Humidity-resistive triboelectric nanogenerator fabricated using metal organic framework composite. Adv. Funct. Mater., 29, 1807655(2019).

    [48] G KHANDELWAL, A CHANDRASEKHAR, P MARIA JOSEPH RAJ N et al. Metal-organic framework: a novel material for triboelectric nanogenerator-based self-powered sensors and systems. Adv. Energy Mater., 9, 1803581(2019).

    [49] Y GUO, Y CAO, Z CHEN et al. Fluorinated metal-organic framework as bifunctional filler toward highly improving output performance of triboelectric nanogenerators. Nano Energy, 70, 104517(2020).

    [50] V HARNCHANA, V NGOC H, W HE et al. Enhanced power output of a triboelectric nanogenerator using poly(dimethylsiloxane) modified with graphene oxide and sodium dodecyl sulfate. ACS Appl. Mater. Interfaces, 10, 25263-25272(2018).

    [51] M KIM, D PARK, M ALAM M et al. Remarkable output power density enhancement of triboelectric nanogenerators via polarized ferroelectric polymers and bulk MoS2 composites. ACS Nano, 13, 4640-4646(2019).

    [52] K TAO, H YI, Y YANG et al. Origami-inspired electret-based triboelectric generator for biomechanical and ocean wave energy harvesting. Nano Energy, 67, 104197(2020).

    [53] R HINCHET, A GHAFFARINEJAD, Y LU et al. Understanding and modeling of triboelectric-electret nanogenerator. Nano Energy, 47, 401-409(2018).

    [54] L LIU, W TANG, L WANG Z. Inductively-coupled-plasma-induced electret enhancement for triboelectric nanogenerators. Nanotechnology, 28, 035405(2017).

    [55] T HUANG, H YU, H WANG et al. Hydrophobic SiO2 electret enhances the performance of poly(vinylidene fluoride) nanofiber- based triboelectric nanogenerator. J. Phys. Chem. C, 120, 26600-26608(2016).

    [56] S YAN, K DONG, J LU et al. Amphiphobic triboelectric nanogenerators based on silica enhanced thermoplastic polymeric nanofiber membranes. Nanoscale, 12, 4527-4536(2020).

    [57] N MENDEL, H WU, F MUGELE. Electrowetting-assisted generation of ultrastable high charge densities in composite silicon oxide- fluoropolymer electret samples for electric nanogenerators. Adv. Funct. Mater., 31, 2007872(2021).

    Yinben GUO, Zixi CHEN, Hongzhi WANG, Qinghong ZHANG. Progress of Inorganic Filler Based Composite Films for Triboelectric Nanogenerators[J]. Journal of Inorganic Materials, 2021, 36(9): 919
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