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Title: Stretchable electrochemical energy storage devices

Abstract

The increasingly intimate contact between electronics and the human body necessitates the development of stretchable energy storage devices that can conform and adapt to the skin. Therefore, the development of stretchable batteries and supercapacitors has received significant attention in recent years. This review provides an overview of the general operating principles of batteries and supercapacitors and the requirements to make these devices stretchable. The following sections provide an in-depth analysis of different strategies to convert the conventionally rigid electrochemical energy storage materials into stretchable form factors. Namely, the strategies of strain engineering, rigid island geometry, fiber-like geometry, and intrinsic stretchability are discussed. A wide range of materials are covered for each strategy, including polymers, metals, and ceramics. By comparing the achieved electrochemical performance and strain capability of these different materials strategies, we allow for a side-by-side comparison of the most promising strategies for enabling stretchable electrochemical energy storage. The final section consists of an outlook for future developments and challenges for stretchable supercapacitors and batteries.

Authors:
 [1]; ORCiD logo [1];  [1];  [1]; ORCiD logo [1]
  1. Stanford Univ., CA (United States)
Publication Date:
Research Org.:
SLAC National Accelerator Laboratory (SLAC), Menlo Park, CA (United States)
Sponsoring Org.:
USDOE Office of Science (SC)
OSTI Identifier:
1646807
Alternate Identifier(s):
OSTI ID: 1631472
Grant/Contract Number:  
AC02-76SF00515; DGE-114747; Battery 500
Resource Type:
Accepted Manuscript
Journal Name:
Chemical Society Reviews
Additional Journal Information:
Journal Volume: 49; Journal Issue: 13; Journal ID: ISSN 0306-0012
Publisher:
Royal Society of Chemistry
Country of Publication:
United States
Language:
English
Subject:
25 ENERGY STORAGE

Citation Formats

Mackanic, David G., Chang, Ting-Hsiang, Huang, Zhuojun, Cui, Yi, and Bao, Zhenan. Stretchable electrochemical energy storage devices. United States: N. p., 2020. Web. doi:10.1039/d0cs00035c.
Mackanic, David G., Chang, Ting-Hsiang, Huang, Zhuojun, Cui, Yi, & Bao, Zhenan. Stretchable electrochemical energy storage devices. United States. https://doi.org/10.1039/d0cs00035c
Mackanic, David G., Chang, Ting-Hsiang, Huang, Zhuojun, Cui, Yi, and Bao, Zhenan. Tue . "Stretchable electrochemical energy storage devices". United States. https://doi.org/10.1039/d0cs00035c. https://www.osti.gov/servlets/purl/1646807.
@article{osti_1646807,
title = {Stretchable electrochemical energy storage devices},
author = {Mackanic, David G. and Chang, Ting-Hsiang and Huang, Zhuojun and Cui, Yi and Bao, Zhenan},
abstractNote = {The increasingly intimate contact between electronics and the human body necessitates the development of stretchable energy storage devices that can conform and adapt to the skin. Therefore, the development of stretchable batteries and supercapacitors has received significant attention in recent years. This review provides an overview of the general operating principles of batteries and supercapacitors and the requirements to make these devices stretchable. The following sections provide an in-depth analysis of different strategies to convert the conventionally rigid electrochemical energy storage materials into stretchable form factors. Namely, the strategies of strain engineering, rigid island geometry, fiber-like geometry, and intrinsic stretchability are discussed. A wide range of materials are covered for each strategy, including polymers, metals, and ceramics. By comparing the achieved electrochemical performance and strain capability of these different materials strategies, we allow for a side-by-side comparison of the most promising strategies for enabling stretchable electrochemical energy storage. The final section consists of an outlook for future developments and challenges for stretchable supercapacitors and batteries.},
doi = {10.1039/d0cs00035c},
journal = {Chemical Society Reviews},
number = 13,
volume = 49,
place = {United States},
year = {Tue Jun 02 00:00:00 EDT 2020},
month = {Tue Jun 02 00:00:00 EDT 2020}
}

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Works referencing / citing this record:

Cellulose-Derived Nanostructures as Sustainable Biomass for Supercapacitors: A Review
journal, January 2022