Flexible wearable devices based on self-powered energy supply

被引:0
作者
Xiao, Lujia [1 ,2 ]
Yin, Binxu [1 ,2 ]
Geng, Zhen [1 ,2 ]
Li, Jia [1 ,2 ]
Jia, Ruonan [1 ,2 ]
Zhang, Kun [1 ,2 ,3 ]
机构
[1] Univ Elect Sci & Technol China, Sichuan Prov Peoples Hosp, Sichuan Acad Med Sci, Cent Lab, 32 West Second Sect,First Ring Rd, Chengdu 610072, Peoples R China
[2] Univ Elect Sci & Technol China, Sichuan Prov Peoples Hosp, Sichuan Acad Med Sci, Dept Orthoped, 32 West Second Sect,First Ring Rd, Chengdu 610072, Peoples R China
[3] Guangxi Med Univ, Natl Ctr Int Res Biotargeting Theranost, Collaborat Innovat Ctr Targeting Tumor Diag & Ther, State Key Lab Targeting Oncol,Guangxi Key Lab Biot, 22 Shuangyong Rd, Nanning 530021, Guangxi, Peoples R China
基金
中国国家自然科学基金;
关键词
Self-powered energy; Nanogenerators; Wearable devices; Flexible electronics; TRIBOELECTRIC NANOGENERATORS; THERMOELECTRIC-MATERIALS; BATIO3; NANOPARTICLES; COMPOSITE HYDROGELS; RECENT PROGRESS; SUPERCAPACITORS; OPTIMIZATION; GENERATORS; POLYMERS; BEHAVIOR;
D O I
10.1016/j.nanoen.2025.111157
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
Wearable devices have emerged as a transformative technology in health monitoring, human-machine interaction, and the Internet of Things (IoT). However, their dependence on rigid, bulky, and conventional batterybased power systems imposes significant limitations. Self-powered systems that leverage energy harvesting technologies, such as piezoelectric nanogenerators (PENG), triboelectric nanogenerators (TENG), and thermoelectric nanogenerators (TEG), to offer a sustainable alternative by converting energy from human motion, temperature gradients, and environmental sources into electrical power. This review discusses the energy conversion mechanisms, working principles or modes and necessary materials of piezoelectric, triboelectric, and thermoelectric nanogenerators, highlighting their fundamental properties, structural optimization and groundbreaking achievements that enhance the performance of these materials. Furthermore, integration strategies for combining nanogenerators with supercapacitors are classified and underlined to construct special self-powered systems that seamlessly integrate energy harvesting, energy storage, and circuit management. Importantly, we expound the excellences and highlight their specific features or functions of these cutting-edge technologies necessitated in various applications, e.g., real-time health monitoring, motion tracking, and disease treatment are also outlined. Beyond that, an in-depth discussion on the existing challenges that current self-powered wearable device research encounters, including energy conversion efficiency, stability, and material durability is proceeded. Accordingly, revolutionary solutions and different perspectives from material innovation, technology integration, and interdisciplinary collaboration that cater to certain application demands are proposed to address these obstacles or challenges, which are anticipated to propel the future development and deployment of efficient, environmentally sustainable, next-generation self-powered wearable devices.
引用
收藏
页数:25
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共 198 条
[71]   Mechanical and piezoelectric properties of surface modified (Na,K) NbO3-based nanoparticle-embedded piezoelectric polymer composite nanofibers for flexible piezoelectric nanogenerators [J].
Kim, Seung-Rok ;
Yoo, Ju-Hyun ;
Kim, Ji Ho ;
Cho, Yong Soo ;
Park, Jin-Woo .
NANO ENERGY, 2021, 79
[72]   Triboelectric Nanogenerator: Structure, Mechanism, and Applications [J].
Kim, Weon-Guk ;
Kim, Do-Wan ;
Tcho, Il-Woong ;
Kim, Jin-Ki ;
Kim, Moon-Seok ;
Choi, Yang-Kyu .
ACS NANO, 2021, 15 (01) :258-287
[73]   Thermoelectric plastics: from design to synthesis, processing and structure-property relationships [J].
Kroon, Renee ;
Mengistie, Desalegn Alemu ;
Kiefer, David ;
Hynynen, Jonna ;
Ryan, Jason D. ;
Yu, Liyang ;
Muller, Christian .
CHEMICAL SOCIETY REVIEWS, 2016, 45 (22) :6147-6164
[74]   Recent advances in power generation through piezoelectric nanogenerators [J].
Kumar, Brijesh ;
Kim, Sang-Woo .
JOURNAL OF MATERIALS CHEMISTRY, 2011, 21 (47) :18946-18958
[75]   Comprehensive overview on thermoelectricity -Materials, applications and recent advances [J].
Laghzal, F. ;
Mbairi, S. Id ;
Tihane, A. ;
Alsaad, A. ;
Narjis, A. .
MATERIALS SCIENCE AND ENGINEERING B-ADVANCED FUNCTIONAL SOLID-STATE MATERIALS, 2024, 307
[76]   Relation between the ion size and pore size for an electric double-layer capacitor [J].
Largeot, Celine ;
Portet, Cristelle ;
Chmiola, John ;
Taberna, Pierre-Louis ;
Gogotsi, Yury ;
Simon, Patrice .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2008, 130 (09) :2730-+
[77]   Robust nanogenerators based on graft copolymers via control of dielectrics for remarkable output power enhancement [J].
Lee, Jae Won ;
Cho, Hye Jin ;
Chun, Jinsung ;
Kim, Kyeong Nam ;
Kim, Seongsu ;
Ahn, Chang Won ;
Kim, Ill Won ;
Kim, Ju-Young ;
Kim, Sang-Woo ;
Yang, Changduk ;
Baik, Jeong Min .
SCIENCE ADVANCES, 2017, 3 (05)
[78]   Recent progress in the synthesis of porous carbon materials [J].
Lee, Jinwoo ;
Kim, Jaeyun ;
Hyeon, Taeghwan .
ADVANCED MATERIALS, 2006, 18 (16) :2073-2094
[79]   All-in-one energy harvesting and storage devices [J].
Lee, Ju-Hyuck ;
Kim, Jeonghun ;
Kim, Tae Yun ;
Al Hossain, Md Shahriar ;
Kim, Sang-Woo ;
Kim, Jung Ho .
JOURNAL OF MATERIALS CHEMISTRY A, 2016, 4 (21) :7983-7999
[80]   Ultra-stretchable and anti-freezing ionic conductive hydrogels as high performance strain sensors and flexible triboelectric nanogenerator in extreme environments [J].
Lei, Tongda ;
Wang, Yongheng ;
Zhang, Qingsong ;
Wang, Haoxuan ;
Duan, Xingru ;
Yan, Jing ;
Xia, Zhaopeng ;
Wang, Run ;
Shou, Wan ;
Li, Xipeng ;
Fan, Jie .
NANO ENERGY, 2024, 126