TY - JOUR
T1 - Synergistic Regulation of the Microstructure for Multifunctional Graphene Aerogels by a Dual Template Method
AU - He, Zhongjie
AU - Li, Xiaoqian
AU - Wang, Hongni
AU - Su, Fangfang
AU - Wang, Dechao
AU - Yao, Dongdong
AU - Zheng, Yaping
N1 - Publisher Copyright:
© 2022 American Chemical Society.
PY - 2022/5/18
Y1 - 2022/5/18
N2 - The performance of graphene aerogels (GAs) is based on the microstructure. However, GAs face a challenge of simultaneously controlling the size and alignment of pores strategically. Herein, we initially proposed a simple strategy to construct GAs with an adjustable structure based on the emulsion and ice dual template methods. Specifically, GAs with a honeycomb structure prepared by conventional freezing (CGAs) exhibited a high specific surface of 176 m2/g, superelasticity with a compressive strain of 95%, isotropic compression and thermal insulation performances, as well as an excellent absorption capacity of 150−550 g/g. Instead, the GAs with a bamboo-like network frozen by unidirectional freezing (UGAs) showed anisotropy in compression and thermal insulation behavior. Furthermore, UGAs exhibited incredible special stress (7.9 kPa cm3/mg) along the axial direction twice than that of the radial direction. Meanwhile, the apparent temperature of UGAs was only 45.6 °C when placed on a 120 °C hot stage along the radial direction. Remarkably, the properties of CGAs and UGAs were significantly improved with the adjustment of the microstructure.
AB - The performance of graphene aerogels (GAs) is based on the microstructure. However, GAs face a challenge of simultaneously controlling the size and alignment of pores strategically. Herein, we initially proposed a simple strategy to construct GAs with an adjustable structure based on the emulsion and ice dual template methods. Specifically, GAs with a honeycomb structure prepared by conventional freezing (CGAs) exhibited a high specific surface of 176 m2/g, superelasticity with a compressive strain of 95%, isotropic compression and thermal insulation performances, as well as an excellent absorption capacity of 150−550 g/g. Instead, the GAs with a bamboo-like network frozen by unidirectional freezing (UGAs) showed anisotropy in compression and thermal insulation behavior. Furthermore, UGAs exhibited incredible special stress (7.9 kPa cm3/mg) along the axial direction twice than that of the radial direction. Meanwhile, the apparent temperature of UGAs was only 45.6 °C when placed on a 120 °C hot stage along the radial direction. Remarkably, the properties of CGAs and UGAs were significantly improved with the adjustment of the microstructure.
KW - graphene aerogels
KW - oil−water separation
KW - robust
KW - structural regulation
KW - thermal insulation
UR - http://www.scopus.com/inward/record.url?scp=85130060122&partnerID=8YFLogxK
U2 - 10.1021/acsami.2c00525
DO - 10.1021/acsami.2c00525
M3 - 文章
C2 - 35511465
AN - SCOPUS:85130060122
SN - 1944-8244
VL - 14
SP - 22544
EP - 22553
JO - ACS Applied Materials and Interfaces
JF - ACS Applied Materials and Interfaces
IS - 19
ER -