4.8 Article

Sustainable-Macromolecule-Assisted Preparation of Cross-linked, Ultralight, Flexible Graphene Aerogel Sensors toward Low-Frequency Strain/Pressure to High-Frequency Vibration Sensing

期刊

SMALL
卷 18, 期 24, 页码 -

出版社

WILEY-V C H VERLAG GMBH
DOI: 10.1002/smll.202202047

关键词

composites; cross-link; graphene aerogels; sensors; sustainable

资金

  1. Science and Engineering Research Council of the Agency for Science, Technology and Research (A*STAR) Singapore under Public Sector Research Funding (PSF) [1521200077]
  2. Qilu Young Scholar Program of Shandong University [31370082163127]

向作者/读者索取更多资源

Ultralight and highly flexible aerogel sensors, composed of cross-linked graphene nanosheets and micrometer-sized honeycomb pores, exhibit exceptional properties including superior compressibility and resilience, good mechanical strength and durability, satisfactory fire-resistance, and outstanding electromechanical sensing performances. These sensors can efficiently respond to a wide range of strains and pressures, even at high temperatures, and demonstrate ultrahigh-frequency sensing capabilities, stability, and durability.
Ultralight and highly flexible aerogel sensors, composed of reduced graphene oxide cross-linked by sustainable-macromolecule-derived carbon, are prepared via facile freeze-drying and thermal annealing. The synergistic combination of cross-linked graphene nanosheets and micrometer-sized honeycomb pores gives rise to the exceptional properties of the aerogels, including superior compressibility and resilience, good mechanical strength and durability, satisfactory fire-resistance, and outstanding electromechanical sensing performances. The corresponding aerogel sensors, operated at an ultralow voltage of 0.2 V, can efficiently respond to a wide range of strains (0.1-80%) and pressures (13-2750 Pa) even at temperatures beyond 300 degrees C. Moreover, the ultrahigh-pressure sensitivity of 10 kPa(-1) and excellent sensing stability and durability are accomplished. Strikingly, the aerogel sensors can also sense the vibration signals with ultrahigh frequencies of up to 4000 Hz for >1 000 000 cycles, significantly outperforming those of other sensors. These enable successful demonstration of the exceptional performance of the cross-linked graphene-based biomimetic aerogels for sensitive monitoring of mechanical signals, e.g., acting as wearable devices for monitoring human motions, and for nondestructive monitoring of cracks on engineering structures, showing the great potential of the aerogel sensors as next-generation electronics.

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