Partially Air‐Filled Skin‐Attachable Deformable Gasket with Negative Poisson's Ratio for Highly‐Efficient Stretchable Thermoelectric Generators

Author:

Choi Hyekyoung1ORCID,Min Bok‐Ki1,Joo Sung‐Jae1,Kim Bong‐Seo1,Lee Kyoungho2,Kang Hyelin23,Sim Yeon Hyang1,Yun Min Ju1,Lee Dong Yoon1,Cha Seung I.14

Affiliation:

1. Energy Conversion Research Center Electrical Materials Research Division Korea Electrotechnology Research Institute (KERI) 12, Jeongiui‐gil, Seongsan‐gu Changwon‐si Gyeongsangnam‐do 51543 Republic of Korea

2. Power SoC Research Center Power Semiconductor Research Division Korea Electrotechnology Research Institute (KERI) 12, Jeongiui‐gil, Seongsan‐gu Changwon‐si Gyeongsangnam‐do 51543 Republic of Korea

3. Department of Electric Engineering Changwon National University 20, Changwondaehak‐ro Uichang‐gu Changwon‐si Gyeongsangnam‐do 51140 Republic of Korea

4. Department of Electro‐functionality Materials Engineering University of Science and Technology (UST) Daejeon 34113 Republic of Korea

Abstract

AbstractWearable thermoelectric generators (WTEGs) have relied on soft encapsulation materials typically used for the structural support of thermoelectric legs. Heat loss through the filler and low heat transfer via the mismatched contact with the skin causes a small temperature gradient between the human body (hot side) and the natural environment (cold side). Instead of using soft encapsulation materials, a partially air‐filled deformable gasket is purposed for leg support, achieving the thermal isolation of thermoelectric legs by preventing parasitic heat transfer. The WTEG comprising the deformable gasket exhibits a 30% larger temperature gradient than that with conventional encapsulant structures filled with soft materials. Additionally, the deformable gasket shows an auxetic metastructure owing to its negative Poisson's ratio, reversibly responding to changes in their environment, which is suitable for skin‐like stretchable wearable devices. The band type of WTEG with the optimized leg geometry and fill factor shows a power output of 2 uW cm2 for eight pairs of thermocouples, a record‐high value among the stretchable TEGs obtained indoors at room temperature (23 °C) without wind. This approach paves the way for the efficient conversion of thermal energy into electrical energy and broadens potential applications for self‐powered wearable electronics.

Funder

Korea Institute of Machinery and Materials

Korea Electrotechnology Research Institute

National Research Council of Science and Technology

Ministry of Science, ICT and Future Planning

Publisher

Wiley

Subject

General Materials Science,Renewable Energy, Sustainability and the Environment

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