4.8 Article

Multifunctional Superelastic, Superhydrophilic, and Ultralight Nanocellulose-Based Composite Carbon Aerogels for Compressive Supercapacitor and Strain Sensor

期刊

ADVANCED FUNCTIONAL MATERIALS
卷 32, 期 26, 页码 -

出版社

WILEY-V C H VERLAG GMBH
DOI: 10.1002/adfm.202113082

关键词

carbon aerogels; cellulose nanofibrils; compressive; strain sensors; supercapacitors

资金

  1. National Natural Science Foundation of China [32071720]
  2. Key Technology Research and Development Program of Tianjin [19YFZCSN00950]
  3. China Postdoctoral Science Foundation [2021M702456]
  4. Tianjin Research Innovation Project for Postgraduate Students [2021YJSB198]
  5. China Scholarship Council [202108120056]
  6. Innovation Project of Excellent Doctoral Dissertation of Tianjin University of Science and Technology [2020005]
  7. Projekt DEAL

向作者/读者索取更多资源

In this study, conductive carbon aerogels with ultralow density and superhydrophilicity were developed based on synergistic hydrogen bonding, electrostatic interaction, and pi-pi interaction within regularly arranged layered porous structures. These aerogels exhibit high compressibility, fatigue resistance, excellent capacitive performance, and can be used as strain sensors.
Developing superelastic and superhydrophilic carbon aerogels with intriguing mechanical properties is urgently desired for achieving promising performances in highly compressive supercapacitors and strain sensors. Herein, based on synergistic hydrogen bonding, electrostatic interaction, and pi-pi interaction within regularly arranged layered porous structures, conductive carbon aerogels with cellulose nanofibrils (CNF), carbon nanotubes (CNT) and reduced graphene oxide (RGO) are developed via bidirectional freezing and subsequent annealing. Benefiting from the porous architecture and high surface roughness, CNF/CNT/RGO carbon aerogels exhibit ultralow density (2.64 mg cm(-3)) and superhydrophilicity (water contact angle approximate to 0 degrees at 106 ms). The honeycomb-like ordered porous structure can efficiently transfer stress in the entire microstructure, thereby endowing carbon aerogels with high compressibility and extraordinary fatigue resistance (10,000 cycles at 50% strain). These aerogels can be assembled into compressive solid-state symmetric supercapacitors showing excellent area capacitance (109.4 mF cm(-2) at 0.4 mA cm(-2)) and superior long cycle compression performance (88% after 5000 cycles at compressive strain of 50%). Furthermore, the aerogels reveal good linear sensitivity (S = 5.61 kPa(-1)) and accurately capture human bio-signals as strain sensors. It is expected that such CNF/CNT/RGO carbon aerogels will provide a novel multifunctional platform for wearable electronics, electronic skin, and human motion monitoring.

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