Page 118 - Read Online
P. 118
Xi et al. Soft Sci 2023;3:26 https://dx.doi.org/10.20517/ss.2023.13 Page 27 of 34
11. Cho S, Ensari I, Weng C, Kahn MG, Natarajan K. Factors affecting the quality of person-generated wearable device data and
associated challenges: rapid systematic review. JMIR Mhealth Uhealth 2021;9:e20738. DOI PubMed PMC
12. Webster CS, Scheeren TWL, Wan YI. Patient monitoring, wearable devices, and the healthcare information ecosystem. Br J Anaesth
2022;128:756-8. DOI PubMed
13. Meng L, Ge K, Song Y, Yang D, Lin Z. Long-term wearable electrocardiogram signal monitoring and analysis based on
convolutional neural network. IEEE Trans Instrum Meas 2021;70:1-11. DOI
14. Randazzo V, Ferretti J, Pasero E. Anytime ECG monitoring through the use of a low-cost, user-friendly, wearable device. Sensors
2021;21:6036. DOI PubMed PMC
15. Chen C, Jiang J, He W, Lei W, Hao Q, Zhang X. 3D printed high-loading lithium-sulfur battery toward wearable energy storage. Adv
Funct Mater 2020;30:1909469. DOI
16. Shu L, Yu Y, Chen W, et al. Wearable emotion recognition using heart rate data from a smart bracelet. Sensors 2020;20:718. DOI
PubMed PMC
17. Zhang S, Xia Q, Ma S, et al. Current advances and challenges in nanosheet-based wearable power supply devices. iScience
2021;24:103477. DOI PubMed PMC
18. Xu C, Song Y, Han M, Zhang H. Portable and wearable self-powered systems based on emerging energy harvesting technology.
Microsyst Nanoeng 2021;7:25. DOI PubMed PMC
19. Reid RC, Mahbub I. Wearable self-powered biosensors. Curr Opin Electrochem 2020;19:55-62. DOI
20. Lou Z, Li L, Wang L, Shen G. Recent progress of self-powered sensing systems for wearable electronics. Small 2017;13:1701791.
DOI
21. Dai J, Li L, Shi B, Li Z. Recent progress of self-powered respiration monitoring systems. Biosens Bioelectron 2021;194:113609.
DOI
22. Parvin D, Hassan O, Oh T, Islam SK. RF energy harvester integrated self-powered wearable respiratory monitoring system. In. IEEE
International Instrumentation and Measurement Technology Conference (I2MTC); 2021. DOI
23. Zhao Z, Lu Y, Mi Y, Meng J, Cao X, Wang N. Structural flexibility in triboelectric nanogenerators: a review on the adaptive design
for self-powered systems. Micromachines 2022;13:1586. DOI PubMed PMC
24. Zheng Y, Omar R, Hu Z, Duong T, Wang J, Haick H. Bioinspired triboelectric nanosensors for self-powered wearable applications.
ACS Biomater Sci Eng 2023;9:2087-102. DOI PubMed
25. Rubab N, Kim SW. Triboelectric nanogenerators for self-powered sensors. J Sens Sci 2022;31:79-84. DOI
26. Wang Y, Guo X, Shi Y, Mei D. Self-powered wearable ultraviolet index detector using a flexible thermoelectric generator. J
Micromech Microeng 2019;29:045002. DOI
27. Guo R, Zhang H, Cao S, Cui X, Yan Z, Sang S. A self-powered stretchable sensor fabricated by serpentine PVDF film for multiple
dynamic monitoring. Materials & Design 2019;182:108025. DOI
28. Wang R, Mu L, Bao Y, et al. Holistically engineered polymer-polymer and polymer-ion interactions in biocompatible polyvinyl
alcohol blends for high-performance triboelectric devices in self-powered wearable cardiovascular monitorings. Adv Mater
2020;32:e2002878. DOI
29. Zhang D, Wang D, Xu Z, et al. Diversiform sensors and sensing systems driven by triboelectric and piezoelectric nanogenerators.
Coord Chem Rev 2021;427:213597. DOI
30. Huo Z, Wei Y, Wang Y, Wang ZL, Sun Q. Integrated self-powered sensors based on 2D material devices. Adv Funct Materials
2022;32:2206900. DOI
31. Lu Y, Lou Z, Jiang K, Chen D, Shen G. Recent progress of self-powered wearable monitoring systems integrated with
microsupercapacitors. Mater Today Nano 2019;8:100050. DOI
32. Yang Z, Zhu Z, Chen Z, et al. Recent advances in self-powered piezoelectric and triboelectric sensors: from material and structure
design to frontier applications of artificial intelligence. Sensors 2021;21:8422. DOI PubMed PMC
33. Wen N, Guan X, Fan Z, et al. A highly stretchable and breathable self-powered dual-parameter sensor for decoupled temperature and
strain sensing. Org Electron 2023;113:106723. DOI
34. Guan H, Zhong T, He H, et al. A self-powered wearable sweat-evaporation-biosensing analyzer for building sports big data. Nano
Energy 2019;59:754-61. DOI
35. Yang L, Ma Z, Tian Y, Meng B, Peng Z. Progress on self-powered wearable and implantable systems driven by nanogenerators.
Micromachines 2021;12:666. DOI PubMed PMC
36. Wang D, Zhang D, Li P, Yang Z, Mi Q, Yu L. Electrospinning of flexible poly(vinyl alcohol)/MXene nanofiber-based humidity
sensor self-powered by monolayer molybdenum diselenide piezoelectric nanogenerator. Nanomicro Lett 2021;13:57. DOI PubMed
PMC
37. Chen J, Zhang L, Tu Y, et al. Wearable self-powered human motion sensors based on highly stretchable quasi-solid state hydrogel.
Nano Energy 2021;88:106272. DOI
38. Yi J, Dong K, Shen S, et al. Fully fabric-based triboelectric nanogenerators as self-powered human-machine interactive keyboards.
Nanomicro Lett 2021;13:103. DOI PubMed PMC
39. Gai Y, Wang E, Liu M, et al. A self-powered wearable sensor for continuous wireless sweat monitoring. Small Methods
2022;6:e2200653. DOI
40. Matiko JW, Wei Y, Torah R, et al. Wearable EEG headband using printed electrodes and powered by energy harvesting for emotion
monitoring in ambient assisted living. Smart Mater Struct 2015;24:125028. DOI
41. Wang S, Jiang Y, Tai H, et al. An integrated flexible self-powered wearable respiration sensor. Nano Energy 2019;63:103829. DOI
42. Kim CS, Yang HM, Lee J, et al. Self-powered wearable electrocardiography using a wearable thermoelectric power generator. ACS
Energy Lett 2018;3:501-7. DOI

