Recent Progress Regarding Materials and Structures of Triboelectric Nanogenerators for AR and VR

被引:21
作者
Si, Jinhao [1 ]
Duan, Ruiguang [1 ]
Zhang, Menglin [1 ]
Liu, Xiaomin [1 ]
机构
[1] Zhengzhou Univ, Sch Phys & Microelect, Zhengzhou 450001, Peoples R China
关键词
nanomaterials; triboelectric nanogenerator; AR and VR; self-powered sensing; WATER-WAVE ENERGY; CONTACT-SEPARATION; PIEZOELECTRIC NANOGENERATOR; POROUS PDMS; SENSOR; PTFE; PERFORMANCE; INTERFACE; ELECTRIFICATION; RECOGNITION;
D O I
10.3390/nano12081385
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
With the continuous advancement in technology, electronic products used in augmented reality (AR) and virtual reality (VR) have gradually entered the public eye. As a result, the power supplies of these electronic devices have attracted more attention from scientists. Compared to traditional power sources, triboelectric nanogenerators (TENGs) are gradually being used for energy harvesting in self-powered sensing technology such as wearable flexible electronics, including AR and VR devices due to their small size, high conversion efficiency, and low energy consumption. As a result, TENGs are the most popular power supplies for AR and VR products. This article first summarizes the working mode and basic theory of TENGs, then reviews the TENG modules used in AR and VR devices, and finally summarizes the material selection and design methods used for TENG preparation. The friction layer of the TENG can be made of a variety of materials such as polymers, metals, and inorganic materials, and among these, polytetrafluoroethylene (PTFE) and polydimethylsiloxane (PDMS) are the most popular materials. To improve TENG performance, the friction layer material must be suitable. Therefore, for different application scenarios, the design methods of the TENG play an important role in its performance, and a reasonable selection of preparation materials and design methods can greatly improve the work efficiency of the TENG. Lastly, we summarize the current research status of nanogenerators, analyze and suggest future application fields, and summarize the main points of material selection.
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页数:23
相关论文
共 134 条
[1]   Strain dependency of dynamic recrystallization during thermomechanical processing of Mg-Gd-Y-Zn-Zr alloy [J].
Aalipour, Z. ;
Zarei-Hanzaki, A. ;
Moshiri, A. ;
Abedi, H. R. ;
Waryoba, Daudi ;
Kisko, A. ;
Karjalainen, L. P. .
JOURNAL OF MATERIALS RESEARCH AND TECHNOLOGY-JMR&T, 2022, 18 :591-598
[2]   Unsteady streaming flow based TENG using hydrophobic film tube with different charge affinity [J].
Ahn, Jee Hwan ;
Hwang, Jeong Yun ;
Kim, Chang Gon ;
Nam, Gyu Hyeon ;
Ahn, Kyoung Kwan .
NANO ENERGY, 2020, 67
[3]   Spectroscopic analysis of PMMA/PVC blends containing CoCl2 [J].
Alghunaim, N. S. .
RESULTS IN PHYSICS, 2015, 5 :331-336
[4]   Non-centrosymmetric zinc silicate-graphene based transparent flexible piezoelectric nanogenerator [J].
Bharti, Dhiraj Kumar ;
Gupta, Manoj Kumar ;
Kumar, Rajeev ;
Sathish, Natarajan ;
Srivastava, Avanish Kumar .
NANO ENERGY, 2020, 73
[5]   A flexible ultra-sensitive triboelectric tactile sensor of wrinkled PDMS/MXene composite films for E-skin [J].
Cai, Ya-Wei ;
Zhang, Xiao-Nan ;
Wang, Gui-Gen ;
Li, Gui-Zhong ;
Zhao, Da-Qiang ;
Sun, Na ;
Li, Fei ;
Zhang, Hua-Yu ;
Han, Jie-Cai ;
Yang, Ya .
NANO ENERGY, 2021, 81
[6]  
Cao ZY, 2021, INT SOL ST SEN ACT M, P451, DOI [10.1109/TRANSDUCERS50396.2021.9495462, 10.1109/Transducers50396.2021.9495462]
[7]   Theoretical analysis of sensor properties of contact-separation mode nanogenerator-based sensors [J].
Cao, Zeyuan ;
Chu, Yao ;
Wang, Shiwen ;
Ye, Xiongying .
NANO ENERGY, 2021, 79
[8]  
Chakhchaoui N., 2020, IOP Conference Series: Materials Science and Engineering, V827, DOI 10.1088/1757-899X/827/1/012012
[9]   Triboelectric nanogenerator based on degradable materials [J].
Chao, Shengyu ;
Ouyang, Han ;
Jiang, Dongjie ;
Fan, Yubo ;
Li, Zhou .
ECOMAT, 2021, 3 (01)
[10]  
Cheedarala R.K., 2022, SCI REP-UK, V12, P1, DOI DOI 10.1038/S41598-022-07614-5