High-Performance Triboelectric Nanogenerator with Double-Surface Shape-Complementary Microstructures Prepared by Using Simple Sandpaper Templates

2018 ◽  
Vol 6 (2) ◽  
pp. 2283-2291 ◽  
Author(s):  
Xu-Wu Zhang ◽  
Gui-Zhong Li ◽  
Gui-Gen Wang ◽  
Ji-Li Tian ◽  
Yi-Lin Liu ◽  
...  
2021 ◽  
pp. 2104290
Author(s):  
Yun Chen ◽  
Bin Xie ◽  
Junyu Long ◽  
Yicheng Kuang ◽  
Xin Chen ◽  
...  

2021 ◽  
Author(s):  
Yong-Mei Wang ◽  
Xinxin Zhang ◽  
Dingyi Yang ◽  
Liting Wu ◽  
Jiaojiao Zhang ◽  
...  

Abstract The high porosity, controllable size, high surface area, and chemical versatility of a metal-organic framework (MOF) enable it a good material for a triboelectric nanogenerator (TENG), and some MOFs have been incorporated in the fabrication of TENGs. However, the understanding of effects of MOFs on the energy conversion of a TENG is still lacking, which inhibits the improvement of the performance of MOF-based TENGs. Here, UiO-66-NH2 MOFs were found to significantly increase the power of a TENG and the mechanism was carefully examined. The electron-withdrawing ability of Zr-based UiO-66-family MOFs was enhanced by designing the amino functionalized 1,4-terephthalic acid (1,4-BDC) as ligand. The chemically modified UiO-66-NH2 was found to increase the surface roughness and surface potential of a composite film with MOFs embedded in polydimethylsiloxane (PDMS) matrix. Thus the total charges due to the contact electrification increased significantly. The composite-based TENG was found to be very durable and its output voltage and current were 4 times and 60 times higher than that of a PDMS-based TENG. This work revealed an effective strategy to design MOFs with excellent electron-withdrawing abilities for high-performance TENGs.


2022 ◽  
Author(s):  
Dhiraj Bharti ◽  
Sushmitha Veeralingam ◽  
Sushmee Badhulika

Obtaining sustainable, high output power supply from triboelectric nanogenerators still remains a major issue which restricts their widespread use in self-powered electronic applications. In this work, an ultra-high performance, non-toxic,...


Nano Energy ◽  
2021 ◽  
Vol 80 ◽  
pp. 105525 ◽  
Author(s):  
Yeongcheol Yun ◽  
Sunmin Jang ◽  
Sumin Cho ◽  
Sae Hyuk Lee ◽  
Hee Jae Hwang ◽  
...  

Author(s):  
Linbo Zhu ◽  
Yifei Hou ◽  
Abdel-Hakim Bouzid ◽  
Jun Hong

Metal to metal contact between joint surfaces is widely used in bolted joints to obtain a rigid and a high performance connection. However, a significant amount of clamping load is lost when the joint is subjected to mechanical and thermal loading including creep and fatigue. In practice, to prevent bolt loosening, additional parts such as spring washers, double nut, spring lock washers, Nyloc nut and so on are used. Those methods are costly and influence the stability of the joint and affect its structural integrity. It is well established that a small compression displacement in clamping parts leads to a big clamping load loss in stiff joints. This paper discusses the relationship between connection stiffness and clamping load and presents a method that improves clamping load retention during operation by a careful design of the member contact surface shape. A single bolted joint with two clamping parts is modeled using finite element method (FEM). A method is proposed to obtain a specific stiffness by an optimized geometrical shape of the joint contact surfaces. The result shows that the contact surface shape based on a gradually varying gap can improve the retention of the initial clamping load. Furthermore, a formula of the connection stiffness based on the curve fitting technique is proposed to predict residual clamping load under different external load and loosening.


Nano Energy ◽  
2018 ◽  
Vol 53 ◽  
pp. 726-733 ◽  
Author(s):  
Zhaoling Li ◽  
Miaomiao Zhu ◽  
Qian Qiu ◽  
Jianyong Yu ◽  
Bin Ding

Nanoscale ◽  
2019 ◽  
Vol 11 (14) ◽  
pp. 6802-6809 ◽  
Author(s):  
Zhiming Lin ◽  
Yufen Wu ◽  
Qiang He ◽  
ChenChen Sun ◽  
Endong Fan ◽  
...  

A waterproof, high-output and airtight-cavity-airbag structural insole based on a TENG is presented to harvest human energy for driving wearable electronics.


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