Category Ranking

98%

Total Visits

921

Avg Visit Duration

2 minutes

Citations

20

Article Abstract

In the Internet of Things era, research is ramping up to develop sustainable green technologies to combat environmental degradation and the depletion of fossil fuels. A high-performance flexible Triboelectric Nanogenerator (TENG) has been developed and tested to fabricate wearable bioelectronics. The TENG device comprises two triboelectric layers: a stacked multilayered composite fiber-mat with poly(vinylidene difluoride) and a Super P carbon black intercalated textured Polydimethylsiloxane film. The device has been developed for potential applications such as green energy harvesting, which can scavenge energy from different low-frequency mechanical energy sources such as walking, running, ambient vibrations, etc. A maximum of ∼127 V open-circuit voltage and 9.4 μA short-circuit current are obtained for PNZ15 with 15% NiCoO/ZnO cofiller-loaded fiber-mat (PNZ15). A maximum power output of 710 W under 4 MΩ load resistance and a power density of ∼178 μW cm are achieved, which is ∼225% greater than that of PNZ0 with a bare fiber-mat. The quantity of dielectric filler significantly improves the output performance of the fabricated device. An assembled compact device with a surface area of 2 × 2 cm can light up LEDs and drive small electronic gadgets. The synergistic outcome is mainly used as a sensor by integrating the fabricated device into wearable smart nanogadgets, which can be used for Human-Machine Interactions. The work is significant in self-powered wearable gadgets and biomechanical energy-harvesting technology. This work aims to provide strategies for synergistic outcomes of energy harvesting using the fabricated device.

Download full-text PDF

Source
http://dx.doi.org/10.1021/acsami.5c05875DOI Listing

Publication Analysis

Top Keywords

fabricated device
12
self-powered wearable
8
energy harvesting
8
device
6
wearable teng
4
teng sensors
4
sensors nicoo/zno
4
nicoo/zno cofiller-embedded
4
cofiller-embedded multilayered
4
multilayered electrospun
4

Similar Publications

3D printing, as a versatile additive manufacturing technique, offers high design flexibility, rapid prototyping, minimal material waste, and the capability to fabricate complex, customized geometries. These attributes make it particularly well-suited for low-temperature hydrogen electrochemical conversion devices-specifically, proton exchange membrane fuel cells, proton exchange membrane electrolyzer cells, anion exchange membrane electrolyzer cells, and alkaline electrolyzers-which demand finely structured components such as catalyst layers, gas diffusion layers, electrodes, porous transport layers, and bipolar plates. This review provides a focused and critical summary of the current progress in applying 3D printing technologies to these key components.

View Article and Find Full Text PDF

In this study, we investigated the influence of ultrasonic frequency during ultrasound-assisted chemical bath deposition (UCBD) on the surface morphology and electrochemical performance of CoO:MnO@CoMnO composite flexible electrodes for supercapacitor applications. By systematically varying the ultrasonic frequency (1.0-2.

View Article and Find Full Text PDF

In the current in vitro experiment, we fabricated and characterized placenta/platelet-rich plasma (PL/Pt) composite scaffolds and evaluated their effect on differentiating adipose stem cells (ASCs) into insulin-producing cells (IPCs) in vitro. The human placenta (PL) was decellularized (dPL), characterized, and digested in pepsin. PRP was extracted using a two-step centrifugation process and then freeze-dried.

View Article and Find Full Text PDF

High Performance Transmission-Type Daytime Radiative Cooling Film with a Simple and Scalable Method.

Adv Mater

September 2025

Key Laboratory for Intelligent Nano Materials and Devices of Ministry of Education, and International Institute for Frontier Science, Nanjing University of Aeronautics and Astronautics, Nanjing, 210016, China.

Transmission-type radiative cooling textiles represent a vital strategy for personal thermal management. However, traditional preparation methods based on heat-induced phase separation face significant challenges regarding cost, environmental impact, and optical performance. Herein, a novel preparation method is devloped by blending mid-IR transparent solid styrene ethylene butylene styrene (SEBS) with solid polyethylene (PE), enabling the creation of pores through dissolving SEBS.

View Article and Find Full Text PDF

Accelerated sonochemical fabrication of a polydopamine@COF hierarchical structure for boosting HO photosynthesis.

Chem Commun (Camb)

September 2025

School of Chemical Sciences & Technology, School of Materials and Energy, Yunnan Provincial Center of Technology Innovation for New Materials and Equipment in Water Pollution Control, Yunnan Institute of Frontier Technologies in Water Treatment, Yunnan University, Kunming 650091, P. R. China. jqwang

In this work, a novel organic heterojunction of polydopamine (PDA)@covalent organic framework (COF) was efficiently synthesized the sonochemical method, leveraging the multifunctional properties of PDA as nucleation sites for COF shell (sonoTp-TAPB) growth. The as-prepared PDA@sonoTp-TAPB hierarchical structure delivers a photocatalytic HO production rate of 728.4 μmol g h in pure water.

View Article and Find Full Text PDF