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A stretchable, fully self-healable, temperature-tolerant, and water-proof supercapacitor using TUEG3 capped gold nanosheets on oxime-carbamate bonded polyurethane film and organohydrogel
被引:10
作者:
Choi, Yeonji
[1
]
Park, Mihyeon
[1
]
Kim, Somin
[1
]
Gong, Kyungmo
[1
]
Kim, Jung Wook
[1
]
Kim, Dong Sik
[1
]
Lee, Jinyoung
[1
]
Jung, Gyusung
[1
]
Kim, Jiyoon
[1
]
Yang, Wonseok
[2
]
Lim, Dong-Kwon
[2
]
Ha, Jeong Sook
[1
]
机构:
[1] Korea Univ, Dept Chem & Biol Engn, 145 Anam Ro, Seoul 02841, South Korea
[2] Korea Univ, KU KIST Grad Sch Converging Sci & Technol, 145 Anam Ro, Seoul 02841, South Korea
基金:
新加坡国家研究基金会;
关键词:
Multi -functional supercapacitor;
Self;
-healing;
Stretchable;
Temperature;
-tolerant;
Skin -attachable electronics;
Durable energy storage device;
Bio-signal monitoring;
HYDROGEL;
RESISTANT;
NETWORKS;
BORATE;
D O I:
10.1016/j.cej.2024.150931
中图分类号:
X [环境科学、安全科学];
学科分类号:
08 ;
0830 ;
摘要:
In this study, we demonstrate a stretchable, fully self-healable, temperature-tolerant, and water-proof supercapacitor with high electrochemical performance via a deliberate selection of materials and device architecture. Distinct from previous works, our whole supercapacitor is stretchable and self-healable, owing to the application of specially devised stretchable and self-healing oxime-carbamate based polyurethane (OC-PU) substrate film, self-healing polymer (poly(ether-thioureas) triethylene glycol) capped Au nanosheet current collector (TUEG3Au NS) and newly synthesized organohydrogel electrolyte. The fabricated supercapacitor exhibits a high electrochemical performances (specific capacitance of 165.5F g-1, energy density of 14.58 Wh kg-1, power density of 2181.75 W kg-1, and capacitance retention of 89 % after 10,000 cycles) with a capacitance retention of 81 % over stretching by 40 % even after repetitive healing from damages, the self-healing of all components (full selfhealing) over repetitive damages with a capacitance recovery by over 83 %, a wide operational temperature range from -20 to 60 degrees C with retaining over 91 % of capacitance at RT. Furthermore, a mu-LED is stably operated with the supercapacitor immersed in water regardless of the mechanical deformation and self-healing from damage due to self-bonded encapsulation layer of hydrophobic OC-PU film. With a vertically integrated patch device consisting of the fabricated supercapacitor and a strain sensor, bio-signals are detected using the stored energy of the supercapacitor even after self-healing from damages over the temperature range from -20 to 60 degrees C. This work suggests the high application potential of our high performance multi-functional supercapacitor as an integrated energy storage device for wearable electronics featuring longevity and stability under harsh environments.
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