High-Energy–Density Fiber Supercapacitors Based on Transition Metal Oxide Nanoribbon Yarns for Comprehensive Wearable Electronics

Author:

Ahn Junseong,Padmajan Sasikala Suchithra,Jeong Yongrok,Kim Jin Goo,Ha Ji-Hwan,Hwang Soon Hyoung,Jeon Sohee,Choi Junhyuk,Kang Byung-Ho,Ahn Jihyeon,Jeong Jun-Ho,Kim Sang Ouk,Park InkyuORCID

Abstract

AbstractFiber supercapacitors (FSs) based on transition metal oxides (TMOs) have garnered considerable attention as energy storage solutions for wearable electronics owing to their exceptional characteristics, including superior comfortability and low weights. These materials are known to exhibit high energy densities, high specific capacitances, and fast redox reactions. However, current fabrication methods for these structures primarily rely on chemical deposition, often resulting in undesirable material structures and necessitating the use of additives, which can degrade the electrochemical performance of such structures. Herein, physically deposited TMO nanoribbon yarns generated via delamination engineering of nanopatterned TMO/metal/TMO trilayer arrays are proposed as potential high-performance FSs. To prepare these arrays, the target materials were initially deposited using a nanoline mold, and subsequently, the nanoribbon was suspended through selective plasma etching to obtain the desired twisted yarn structures. Because of the direct formation of TMOs on Ni electrodes, a high energy/power density and excellent electrochemical stability were achieved in asymmetric FS devices incorporating CoNixOy nanoribbon yarns and graphene fibers. Furthermore, a triboelectric nanogenerator, pressure sensor, and flexible light-emitting diode were synergistically combined with the FS. The integration of wearable electronic components, encompassing energy harvesting, energy storage, and powering sensing/display devices, is promising for the development of future smart textiles. Graphical Abstract

Funder

the National Creative Research Initiative (CRI) Center for Multi-Dimensional Directed Nanoscale Assembly

Creative Challenge research grant

the Ministry of Trade, Industry, & Energy

the Ministry of Culture, Sports, and Tourism, and the Korea Creative Content Agency

National Research Foundation of Korea (NRF) grant funded by the Korean government

by the Ministry of SMEs and Startup

Korea Advanced Institute of Science and Technology

Publisher

Springer Science and Business Media LLC

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