Evaporation-Driven Energy Generation Using an Electrospun Polyacrylonitrile Nanofiber Mat with Different Support Substrates

Author:

Kwon Yongbum12ORCID,Bui-Vinh Dai2,Lee Seung-Hwan1,Baek So Hyun1,Lee Songhui3,Yun Jeungjai1,Baek Minwoo3,Lee Hyun-Woo1,Park Jaebeom2,Kim Miri3,Yoo Minsang3,Kim Bum Sung1ORCID,Song Yoseb1,Lee Handol234ORCID,Lee Do-Hyun5,Jeong Da-Woon1ORCID

Affiliation:

1. Korea National Institute of Rare Metals, Korea Institute of Industrial Technology, Incheon 21655, Republic of Korea

2. Department of Environmental Engineering, Inha University, Incheon 22212, Republic of Korea

3. Program in Environmental and Polymer Engineering, Graduate School of Inha University, Incheon 22212, Republic of Korea

4. Particle Pollution Research and Management Center, Incheon 21999, Republic of Korea

5. Korea Dyeing & Finishing Technology Institute (DYETEC Institute), Daegu 41706, Republic of Korea

Abstract

Water evaporation-driven energy harvesting is an emerging mechanism for contributing to green energy production with low cost. Herein, we developed polyacrylonitrile (PAN) nanofiber-based evaporation-driven electricity generators (PEEGs) to confirm the feasibility of utilizing electrospun PAN nanofiber mats in an evaporation-driven energy harvesting system. However, PAN nanofiber mats require a support substrate to enhance its durability and stability when it is applied to an evaporation-driven energy generator, which could have additional effects on generation performance. Accordingly, various support substrates, including fiberglass, copper, stainless mesh, and fabric screen, were applied to PEEGs and examined to understand their potential impacts on electrical generation outputs. As a result, the PAN nanofiber mats were successfully converted to a hydrophilic material for an evaporation-driven generator by dip-coating them in nanocarbon black (NCB) solution. Furthermore, specific electrokinetic performance trends were investigated and the peak electricity outputs of Voc were recorded to be 150.8, 6.5, 2.4, and 215.9 mV, and Isc outputs were recorded to be 143.8, 60.5, 103.8, and 121.4 μA, from PEEGs with fiberglass, copper, stainless mesh, and fabric screen substrates, respectively. Therefore, the implications of this study would provide further perspectives on the developing evaporation-induced electricity devices based on nanofiber materials.

Funder

Korea Institute of Industrial Technology

Publisher

MDPI AG

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