3D-printed energy harvesting devices for flexible and wearable electronics

被引:2
|
作者
Patil, Ishant G. [1 ]
Thakur, Kanik [1 ]
Nath, Sudhansu Sekhar [1 ]
Sundriyal, Poonam [1 ]
机构
[1] Indian Inst Technol, Dept Mech Engn, Printing & Flexible Device Mfg Lab, Kharagpur 721302, West Bengal, India
来源
SUSTAINABLE ENERGY & FUELS | 2024年 / 8卷 / 24期
关键词
TRIBOELECTRIC NANOGENERATOR; SOLAR-CELL; PIEZOELECTRIC PERFORMANCE; RENEWABLE ENERGY; HIGHLY-EFFICIENT; ORGANIC-DYE; INKJET; FABRICATION; GRAPHENE; PROGRESS;
D O I
10.1039/d4se00824c
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
Ambient energy harvesting has great potential to contribute to sustainable development and address the emerging energy demands. Particularly, energy harvesting devices (EHDs) are attractive for powering self-powered wearable and smart electronics, where several challenges exist due to the use of traditional batteries. Despite the rapid advances in EHDs, their utilization in flexible and wearable self-powered electronics is limited due to traditional manufacturing processes. Solution-based 3-dimensional (3D) printing techniques have huge potential to improve the manufacturing of next-generation EHDs. This review focuses on the current status of 3D-printed EHDs for flexible and wearable devices. The inkjet printing and extrusion-based additive manufacturing processes can greatly improve the manufacturing of EHDs due to their capability to process a wide range of materials and design flexibility. Further, this review outlines the materials employed for fabricating different EHDs, such as piezoelectric nanogenerators (PENGs), triboelectric nanogenerators (TENGs), solar cells, and thermoelectric devices, and the recent challenges in their full utilization for flexible and wearable electronics. It also features recent notable results in the additive manufacturing of EHDs, existing challenges, and future scope. In general, the huge potential of 3D printing for the smart manufacturing of EHDs for next-generation self-powered wearable and implantable electronics has been summarized in this review.
引用
收藏
页码:5731 / 5767
页数:37
相关论文
共 50 条
  • [41] 3D printing flexible Ga-doped ZnO films for wearable energy harvesting: thermoelectric and piezoelectric nanogenerators
    Lemine, Aicha S.
    Bhadra, Jolly
    Sadasivuni, Kishor Kumar
    Popelka, Anton
    Yempally, Swathi
    Ahmad, Zubair
    Al-Thani, Noora J.
    Hasan, Anwarul
    JOURNAL OF MATERIALS SCIENCE-MATERIALS IN ELECTRONICS, 2024, 35 (24)
  • [42] Electrically conductive filament for 3D-printed circuits and sensors
    Kwok, Sen Wai
    Goh, Kok Hin Henry
    Tan, Zer Dong
    Tan, Siew Ting Melissa
    Tjiu, Weng Weei
    Soh, Je Yeong
    Ng, Zheng Jie Glenn
    Chan, Yan Zhi
    Hui, Hui Kim
    Goh, Kuan Eng Johnson
    APPLIED MATERIALS TODAY, 2017, 9 : 167 - 175
  • [43] Validating 3D-printed porous proxies by tomography and porosimetry
    Hasiuk, Franciszek
    Ishutov, Sergey
    Pacyga, Artur
    RAPID PROTOTYPING JOURNAL, 2018, 24 (03) : 630 - 636
  • [44] Overcoming transparency limitations in 3D-printed yttria ceramics
    Zhang, Sinuo
    Gal, Chang Woo
    Sutejo, Imam Akbar
    Abbas, Shakeel
    Choi, Yeong-Jin
    Kim, Ha-Neul
    Park, Young-Jo
    Yun, Hui-suk
    JOURNAL OF MATERIALS SCIENCE & TECHNOLOGY, 2025, 225 : 59 - 71
  • [45] A 3D-printed acoustic triboelectric nanogenerator for quarter-wavelength acoustic energy harvesting and self-powered edge sensing
    Yuan, Ming
    Li, Chunhui
    Liu, Hongmian
    Xu, Qinghao
    Xie, Yannan
    NANO ENERGY, 2021, 85
  • [46] Direct-ink-writing 3D-printed bioelectronics
    Tay, Roland Yingjie
    Song, Yu
    Yao, Dickson R.
    Gao, Wei
    MATERIALS TODAY, 2023, 71 : 135 - 151
  • [47] Electromagnetic interference shielding of 3D-printed graphene-polyamide-6 composites with 3D-printed morphology
    Lee, Kok Peng Marcian
    Baum, Thomas
    Shanks, Robert
    Daver, Fugen
    ADDITIVE MANUFACTURING, 2021, 43
  • [48] Evaluating the Piezoelectric Energy Harvesting Potential of 3D-Printed Graphene Prepared Using Direct Ink Writing and Fused Deposition Modelling
    Hushein, R.
    Dhilipkumar, Thulasidhas
    Shankar, Karthik, V
    Karuppusamy, P.
    Salunkhe, Sachin
    Venkatesan, Raja
    Shazly, Gamal A.
    Vetcher, Alexandre A.
    Kim, Seong-Cheol
    POLYMERS, 2024, 16 (17)
  • [49] 3D-printed microneedles in biomedical applications
    Dabbagh, Sajjad Rahmani
    Sarabi, Misagh Rezapour
    Rahbarghazi, Reza
    Sokullu, Emel
    Yetisen, Ali K.
    Tasoglu, Savas
    ISCIENCE, 2021, 24 (01)
  • [50] Advanced 3D-Printed Flexible Composite Electrodes of Diamond, Carbon Nanotubes, and Thermoplastic Polyurethane
    Baluchova, Simona
    van Leeuwen, Stach
    Kumru, Baris
    Buijnsters, Josephus G.
    ACS APPLIED POLYMER MATERIALS, 2024, 6 (23): : 14638 - 14647