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Multi-Scale Nanofiber Filter-Based Teng For Sustainable Enhanced Pm0.3 Filtration and Self-Powered Respiratory Monitoring

33 Pages Posted: 13 Mar 2025 Publication Status: Accepted

See all articles by Mengtong Yi

Mengtong Yi

Fuzhou University

Nan Lu

Fuzhou University

Yukui Gou

Fuzhou University

Pinmei Yan

Fuzhou University

Hong Liu

Fuzhou University

Xiaoqing Gao

Fuzhou University

Jianying Huang

Fuzhou University - College of Chemical Engineering

Weilong Cai

Fuzhou University - College of Chemical Engineering

Yuekun Lai

Fuzhou University - College of Chemical Engineering

Abstract

Advanced healthcare monitors for air pollution applications pose a significant challenge in achieving a balance between high-performance filtration and multifunctional smart integration. Electrospinning triboelectric nanogenerators (TENG) provide a significant potential for use under such difficult circumstances. We have successfully constructed a high-performance TENG utilizing a novel multi-scale nanofiber architecture. Nylon 66 (PA66) and chitosan quaternary ammonium salt (HACC) composites were prepared by electrospinning, and PA66/H multiscale nanofiber membranes composed of nanofibers (≈73 nm) and submicron-fibers (≈123nm) were formed. PA66/H multi-scale nanofiber membrane as the positive electrode and negative electrode-spun PVDF-HFP nanofiber membrane composed of respiration-driven PVDF-HFP@PA66/H TENG. The resulting PVDF-HFP@PA66/H TENG based air filter utilizes electrostatic adsorption and physical interception mechanisms, achieving PM0.3 filtration efficiency over 99% with a pressure drop of only 48 Pa. Besides PVDF-HFP@PA66/H TENG exhibits excellent stability in high-humidity environments, with filtration efficiency reduced by less than 1%. At the same time, the TENG achieves periodic contact separation through breathing drive to achieve self-power, which can ensure the long-term stability of the filtration efficiency. In addition to the air filtration function, TENG can also monitor health in real time by capturing human breathing signals without external power supply. This integrated system combines high-efficiency air filtration, self-powered operation, and health monitoring, presenting an innovative solution for air purification, smart protective equipment, and portable health monitoring. These findings highlight the potential of this technology for diverse applications, offering a promising direction for advancing multifunctional air filtration systems.

Keywords: Multi-scale nanofiber membrane, Electrospinning, Triboelectric nanogenerators, PM0.3 filtration, Self-powered respiratory monitoring

Suggested Citation

Yi, Mengtong and Lu, Nan and Gou, Yukui and Yan, Pinmei and Liu, Hong and Gao, Xiaoqing and Huang, Jianying and Cai, Weilong and Lai, Yuekun, Multi-Scale Nanofiber Filter-Based Teng For Sustainable Enhanced Pm0.3 Filtration and Self-Powered Respiratory Monitoring. Available at SSRN: https://ssrn.com/abstract=5170339 or http://dx.doi.org/10.2139/ssrn.5170339

Mengtong Yi

Fuzhou University ( email )

fuzhou, 350000
China

Nan Lu

Fuzhou University ( email )

fuzhou, 350000
China

Yukui Gou

Fuzhou University ( email )

fuzhou, 350000
China

Pinmei Yan

Fuzhou University ( email )

fuzhou, 350000
China

Hong Liu

Fuzhou University ( email )

fuzhou, 350000
China

Xiaoqing Gao

Fuzhou University ( email )

fuzhou, 350000
China

Jianying Huang

Fuzhou University - College of Chemical Engineering

fuzhou, 350000
China

Weilong Cai

Fuzhou University - College of Chemical Engineering

fuzhou, 350000
China

Yuekun Lai (Contact Author)

Fuzhou University - College of Chemical Engineering

China

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