• Journal of Semiconductors
  • Vol. 42, Issue 10, 101601 (2021)
Kai Dong1、2 and Zhong Lin Wang1、2、3
Author Affiliations
  • 1Beijing Institute of Nanoenergy and Nanosystems, Chinese Academy of Sciences, Beijing 100083, China
  • 2College of Nanoscience and Technology, University of Chinese Academy of Sciences, Beijing 100049, China
  • 3School of Material Science and Engineering, Georgia Institute of Technology, Atlanta, Georgia 30332, USA
  • show less
    DOI: 10.1088/1674-4926/42/10/101601 Cite this Article
    Kai Dong, Zhong Lin Wang. Self-charging power textiles integrating energy harvesting triboelectric nanogenerators with energy storage batteries/supercapacitors[J]. Journal of Semiconductors, 2021, 42(10): 101601 Copy Citation Text show less
    References

    [1] D E H J Gernaat, H S de Boer, V Daioglou et al. Climate change impacts on renewable energy supply. Nat Clim Change, 11, 119(2021).

    [2] K Dong, X Peng, Z Wang. Fiber/fabric-based piezoelectric and triboelectric nanogenerators for flexible/stretchable and wearable electronics and artificial intelligence. Adv Mater, 32, 1902549(2020).

    [3] Z Wang. Entropy theory of distributed energy for internet of things. Nano Energy, 58, 669(2019).

    [4] K Dong, X Peng, J An et al. Shape adaptable and highly resilient 3D braided triboelectric nanogenerators as e-textiles for power and sensing. Nat Commun, 11, 2868(2020).

    [5] D Lau, N Song, C Hall et al. Hybrid solar energy harvesting and storage devices: The promises and challenges. Mater Today Energy, 13, 22(2019).

    [6] M Y Gao, P Wang, L L Jiang et al. Power generation for wearable systems. Energy Environ Sci, 14, 2114(2021).

    [7] W Y Wong, C L Ho. Organometallic photovoltaics: A new and versatile approach for harvesting solar energy using conjugated polymetallaynes. Acc Chem Res, 43, 1246(2010).

    [8] S Y Chang, P Cheng, G Li et al. Transparent polymer photovoltaics for solar energy harvesting and beyond. Joule, 2, 1039(2018).

    [9] C Li, S Cong, Z N Tian et al. Flexible perovskite solar cell-driven photo-rechargeable lithium-ion capacitor for self-powered wearable strain sensors. Nano Energy, 60, 247(2019).

    [10] S J Kim, J H We, B J Cho. A wearable thermoelectric generator fabricated on a glass fabric. Energy Environ Sci, 7, 1959(2014).

    [11] Y Yang, S H Wang, Y Zhang et al. Pyroelectric nanogenerators for driving wireless sensors. Nano Lett, 12, 6408(2012).

    [12] C Zhang, W Fan, S J Wang et al. Recent progress of wearable piezoelectric nanogenerators. ACS Appl Electron Mater, 3, 2449(2021).

    [13] K Dong, Z Y Wu, J N Deng et al. A stretchable yarn embedded triboelectric nanogenerator as electronic skin for biomechanical energy harvesting and multifunctional pressure sensing. Adv Mater, 30, 1804944(2018).

    [14] X Jin, A J Bandodkar, M Fratus et al. Modeling, design guidelines, and detection limits of self-powered enzymatic biofuel cell-based sensors. Biosens Bioelectron, 168, 112493(2020).

    [15] X H Chen, L Yin, J Lv et al. Stretchable and flexible buckypaper-based lactate biofuel cell for wearable electronics. Adv Funct Mater, 29, 1905785(2019).

    [16] X M Liu, H Y Gao, J E Ward et al. Power generation from ambient humidity using protein nanowires. Nature, 578, 550(2020).

    [17] Y X Zhang, D K Nandakumar, S C Tan. Digestion of ambient humidity for energy generation. Joule, 4, 2532(2020).

    [18] H Ryu, H J Yoon, S W Kim. Hybrid energy harvesters: Toward sustainable energy harvesting. Adv Mater, 31, 1802898(2019).

    [19] X Peng, K Dong, C Ning et al. All-nanofiber self-powered skin-interfaced real-time respiratory monitoring system for obstructive sleep apnea-hypopnea syndrome diagnosing. Adv Funct Mater, 31, 2103559(2021).

    [20] R Hinchet, H J Yoon, H Ryu et al. Transcutaneous ultrasound energy harvesting using capacitive triboelectric technology. Science, 365, 491(2019).

    [21] S Kim, M K Gupta, K Y Lee et al. Transparent flexible graphene triboelectric nanogenerators. Adv Mater, 26, 3918(2014).

    [22] H Ryu, H M Park, M K Kim et al. Self-rechargeable cardiac pacemaker system with triboelectric nanogenerators. Nat Commun, 12, 4374(2021).

    [23] Z Wang. On the first principle theory of nanogenerators from Maxwell's equations. Nano Energy, 68, 104272(2020).

    [24] C S Wu, A C Wang, W B Ding et al. Triboelectric nanogenerator: A foundation of the energy for the new era. Adv Energy Mater, 9, 1802906(2019).

    [25] C Rodrigues, D Nunes, D Clemente et al. Emerging triboelectric nanogenerators for ocean wave energy harvesting: State of the art and future perspectives. Energy Environ Sci, 13, 2657(2020).

    [26] C Y Ye, K Dong, J An et al. A triboelectric–electromagnetic hybrid nanogenerator with broadband working range for wind energy harvesting and a self-powered wind speed sensor. ACS Energy Lett, 6, 1443(2021).

    [27] X Peng, K Dong, C Y Ye et al. A breathable, biodegradable, antibacterial, and self-powered electronic skin based on all-nanofiber triboelectric nanogenerators. Sci Adv, 6, eaba9624(2020).

    [28] J Yi, K Dong, S Shen et al. Fully fabric-based triboelectric nanogenerators as self-powered human-machine interactive keyboards. Nano Micro Lett, 13, 1(2021).

    [29] W Y Jin, M M Ovhal, H B Lee et al. Scalable, all-printed photocapacitor fibers and modules based on metal-embedded flexible transparent conductive electrodes for self-charging wearable applications. Adv Energy Mater, 11, 2003509(2021).

    [30] C Li, M M Islam, J Moore et al. Wearable energy-smart ribbons for synchronous energy harvest and storage. Nat Commun, 7, 13319(2016).

    [31] Q Zeng, Y Q Lai, L X Jiang et al. Integrated photorechargeable energy storage system: Next-generation power source driving the future. Adv Energy Mater, 10, 1903930(2020).

    [32] K Yang, K Cho, S Yang et al. A laterally designed all-in-one energy device using a thermoelectric generator-coupled micro supercapacitor. Nano Energy, 60, 667(2019).

    [33] X J Li, C M Jiang, F N Zhao et al. A self-charging device with bionic self-cleaning interface for energy harvesting. Nano Energy, 73, 104738(2020).

    [34] K Krishnamoorthy, P Pazhamalai, V K Mariappan et al. Probing the energy conversion process in piezoelectric-driven electrochemical self-charging supercapacitor power cell using piezoelectrochemical spectroscopy. Nat Commun, 11, 2351(2020).

    [35] J Lv, I Jeerapan, F Tehrani et al. Sweat-based wearable energy harvesting-storage hybrid textile devices. Energy Environ Sci, 11, 3431(2018).

    [36] Y Zhang, F Wan, S Huang et al. A chemically self-charging aqueous zinc-ion battery. Nat Commun, 11, 2199(2020).

    [37] H Sun, Y Zhang, J Zhang et al. Energy harvesting and storage in 1D devices. Nat Rev Mater, 2, 1(2017).

    [38] K Dong, Y F Hu, J Yang et al. Smart textile triboelectric nanogenerators: Current status and perspectives. MRS Bull, 46, 512(2021).

    [39] K Dong, J N Deng, W B Ding et al. Versatile core-sheath yarn for sustainable biomechanical energy harvesting and real-time human-interactive sensing. Adv Energy Mater, 8, 1801114(2018).

    [40] K Dong, J N Deng, Y L Zi et al. 3D orthogonal woven triboelectric nanogenerator for effective biomechanical energy harvesting and as self-powered active motion sensors. Adv Mater, 29, 1702648(2017).

    [41] K Zhao, Y H Wang, L Han et al. Nanogenerator-based self-charging energy storage devices. Nano Micro Lett, 11, 1(2019).

    [42] J J Luo, Z Wang. Recent advances in triboelectric nanogenerator based self-charging power systems. Energy Storage Mater, 23, 617(2019).

    [43] X Pu, Z L Wang. Self-charging power system for distributed energy: Beyond the energy storage unit. Chem Sci, 12, 34(2021).

    [44] X Pu, W G Hu, Z Wang. Toward wearable self-charging power systems: The integration of energy-harvesting and storage devices. Small, 14, 1702817(2018).

    [45] J H Lee, J Kim, T Y Kim et al. All-in-one energy harvesting and storage devices. J Mater Chem A, 4, 7983(2016).

    [46] L Wang, X M Fu, J Q He et al. Application challenges in fiber and textile electronics. Adv Mater, 32, 1901971(2020).

    [47] J Wang, X H Li, Y L Zi et al. A flexible fiber-based supercapacitor-triboelectric-nanogenerator power system for wearable electronics. Adv Mater, 27, 4830(2015).

    [48] Y Yang, L Xie, Z Wen et al. Coaxial triboelectric nanogenerator and supercapacitor fiber-based self-charging power fabric. ACS Appl Mater Interfaces, 10, 42356(2018).

    [49] J Han, C Xu, J Zhang et al. Multifunctional coaxial energy fiber toward energy harvesting, storage, and utilization. ACS Nano, 15, 1597(2021).

    [50] Y Cho, S Pak, Y G Lee et al. Hybrid smart fiber with spontaneous self-charging mechanism for sustainable wearable electronics. Adv Funct Mater, 30, 1908479(2020).

    [51] X Pu, L X Li, H Q Song et al. A self-charging power unit by integration of a textile triboelectric nanogenerator and a flexible lithium-ion battery for wearable electronics. Adv Mater, 27, 2472(2015).

    [52] X Pu, L X Li, M M Liu et al. Wearable self-charging power textile based on flexible yarn supercapacitors and fabric nanogenerators. Adv Mater, 28, 98(2016).

    [53] S S Kwak, H Kim, W Seung et al. Fully stretchable textile triboelectric nanogenerator with knitted fabric structures. ACS Nano, 11, 10733(2017).

    [54] J Chen, H Y Guo, X J Pu et al. Traditional weaving craft for one-piece self-charging power textile for wearable electronics. Nano Energy, 50, 536(2018).

    [55] G Q Xu, D Guan, X Yin et al. A coplanar-electrode direct-current triboelectric nanogenerator with facile fabrication and stable output. EcoMat, 2, e12037(2020).

    [56] C Chen, H Guo, L Chen et al. Direct current fabric triboelectric nanogenerator for biomotion energy harvesting. ACS Nano, 14, 4585(2020).

    [57] R W Cheng, K Dong, P F Chen et al. High output direct-current power fabrics based on the air breakdown effect. Energy Environ Sci, 14, 2460(2021).

    [58] K Dong, Y C Wang, J Deng et al. A highly stretchable and washable all-yarn-based self-charging knitting power textile composed of fiber triboelectric nanogenerators and supercapacitors. ACS Nano, 11, 9490(2017).

    [59] X H Ren, X Y Xiang, H F Yin et al. All-yarn triboelectric nanogenerator and supercapacitor based self-charging power cloth for wearable applications. Nanotechnology, 32, 315404(2021).

    [60] M M Liu, Z F Cong, X Pu et al. High-energy asymmetric supercapacitor yarns for self-charging power textiles. Adv Funct Mater, 29, 1806298(2019).

    [61] S M Niu, X F Wang, F Yi et al. A universal self-charging system driven by random biomechanical energy for sustainable operation of mobile electronics. Nat Commun, 6, 8975(2015).

    [62] C L Fang, T Tong, T Z Bu et al. Overview of power management for triboelectric nanogenerators. Adv Intell Syst, 2, 1900129(2020).

    [63] Y Y Mao, Y Li, J Y Xie et al. Triboelectric nanogenerator/supercapacitor in-one self-powered textile based on PTFE yarn wrapped PDMS/MnO2NW hybrid elastomer. Nano Energy, 84, 105918(2021).

    [64] Y Song, J X Zhang, H Guo et al. All-fabric-based wearable self-charging power cloth. Appl Phys Lett, 111, 073901(2017).

    [65] S Jung, J Lee, T Hyeon et al. Fabric-based integrated energy devices for wearable activity monitors. Adv Mater, 26, 6329(2014).

    [66] Z Cong, W Guo, Z Guo et al. Stretchable coplanar self-charging power textile with resist-dyeing triboelectric nanogenerators and microsupercapacitors. ACS Nano, 14, 5590(2020).

    [67] Z F Wang, Z H Ruan, W S Ng et al. Integrating a triboelectric nanogenerator and a zinc-ion battery on a designed flexible 3D spacer fabric. Small Methods, 2, 1800150(2018).

    [68] H Guo, M H Yeh, Y C Lai et al. All-in-one shape-adaptive self-charging power package for wearable electronics. ACS Nano, 10, 10580(2016).

    [69] H Guo, M H Yeh, Y Zi et al. Ultralight cut-paper-based self-charging power unit for self-powered portable electronic and medical systems. ACS Nano, 11, 4475(2017).

    [70] Y Lin, D Gritsenko, Q Liu et al. Recent advancements in functionalized paper-based electronics. ACS Appl Mater Interfaces, 8, 20501(2016).

    [71] N Sun, Z Wen, F P Zhao et al. All flexible electrospun papers based self-charging power system. Nano Energy, 38, 210(2017).

    [72] X X Shi, S Chen, H L Zhang et al. Portable self-charging power system via integration of a flexible paper-based triboelectric nanogenerator and supercapacitor. ACS Sustainable Chem Eng, 7, 18657(2019).

    [73] B K Deka, A Hazarika, S Lee et al. Triboelectric-nanogenerator-integrated structural supercapacitor based on highly active P-doped branched Cu-Mn selenide nanowires for efficient energy harvesting and storage. Nano Energy, 73, 104754(2020).

    [74] Q Jiang, C S Wu, Z J Wang et al. MXene electrochemical microsupercapacitor integrated with triboelectric nanogenerator as a wearable self-charging power unit. Nano Energy, 45, 266(2018).

    [75] Y Bai, H Jantunen, J Juuti. Energy harvesting research: The road from single source to multisource. Adv Mater, 30, 1707271(2018).

    [76] Y Bai, H Jantunen, J Juuti. Hybrid, multi-source, and integrated energy harvesters. Front Mater, 5, 65(2018).

    [77] Y K Pang, Y T Cao, M Derakhshani et al. Hybrid energy-harvesting systems based on triboelectric nanogenerators. Matter, 4, 116(2021).

    [78] X Pu, W X Song, M M Liu et al. Wearable power-textiles by integrating fabric triboelectric nanogenerators and fiber-shaped dye-sensitized solar cells. Adv Energy Mater, 6, 1601048(2016).

    [79] Z Wen, M H Yeh, H Guo et al. Self-powered textile for wearable electronics by hybridizing fiber-shaped nanogenerators, solar cells, and supercapacitors. Sci Adv, 2, e1600097(2016).

    [80] W X Song, X Yin, D Liu et al. A highly elastic self-charging power system for simultaneously harvesting solar and mechanical energy. Nano Energy, 65, 103997(2019).

    [81] L Yin, K N Kim, J Lv et al. A self-sustainable wearable multi-modular E-textile bioenergy microgrid system. Nat Commun, 12, 1542(2021).

    [82] S H Wang, Z H Lin, S M Niu et al. Motion charged battery as sustainable flexible-power-unit. ACS Nano, 7, 11263(2013).

    [83] L Xu, H Wu, G Yao et al. Giant voltage enhancement via triboelectric charge supplement channel for self-powered electroadhesion. ACS Nano, 12, 10262(2018).

    [84] F B Xi, Y K Pang, W Li et al. Universal power management strategy for triboelectric nanogenerator. Nano Energy, 37, 168(2017).

    [85] K Zhang, X Wang, Y Yang et al. Hybridized electromagnetic-triboelectric nanogenerator for scavenging biomechanical energy for sustainably powering wearable electronics. ACS Nano, 9, 3521(2015).

    [86] W Liu, Z Wang, G Wang et al. Switched-capacitor-convertors based on fractal design for output power management of triboelectric nanogenerator. Nat Commun, 11, 1883(2020).

    [87] W L Liu, Z Wang, C G Hu. Advanced designs for output improvement of triboelectric nanogenerator system. Mater Today, 45, 93(2021).

    [88] A Noori, M F El-Kady, M S Rahmanifar et al. Towards establishing standard performance metrics for batteries, supercapacitors and beyond. Chem Soc Rev, 48, 1272(2019).

    [89] S M Niu, Z Wang. Theoretical systems of triboelectric nanogenerators. Nano Energy, 14, 161(2015).

    [90] Y Zi, S Niu, J Wang et al. Standards and figure-of-merits for quantifying the performance of triboelectric nanogenerators. Nat Commun, 6, 8376(2015).

    [91] X Xia, J J Fu, Y L Zi. A universal standardized method for output capability assessment of nanogenerators. Nat Commun, 10, 4428(2019).

    [92] J J Fu, X Xia, G Q Xu et al. On the maximal output energy density of nanogenerators. ACS Nano, 13, 13257(2019).

    Kai Dong, Zhong Lin Wang. Self-charging power textiles integrating energy harvesting triboelectric nanogenerators with energy storage batteries/supercapacitors[J]. Journal of Semiconductors, 2021, 42(10): 101601
    Download Citation