Self-assembly synthesis of 3D graphene/nano-Fe3O4 hybrid aerogels with improved mechanical and thermal properties

被引:10
作者
Jalaly, Maisam [1 ]
Hosseini, Reza [1 ]
Bakhshi, Ali [1 ]
Chehelamirani, Morteza [2 ]
机构
[1] Iran Univ Sci & Technol IUST, Sch Adv Technol, Nanotechnol Dept, Tehran 1684613114, Iran
[2] Univ Calgary, Dept Chem & Petr Engn, 2500 Univ Dr Northwest, Calgary, AB T2N 1N4, Canada
关键词
Graphene aerogels; Magnetite nanoparticles; Mechanical properties; Thermal properties; Electrostatic self-assembly; GRAPHENE OXIDE; COMPOSITES; REDUCTION; FABRICATION; ENERGY;
D O I
10.1016/j.jallcom.2022.163718
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
Graphene aerogel and graphene-magnetite hybrid aerogel were prepared using hydrothermal method followed by a freeze-drying process. Magnetite nanoparticles were encapsulated by graphene sheets in an electrostatic self-assembly process. The morphology and properties of aerogels were characterized by several techniques including UV-Vis spectroscopy, Raman spectroscopy, FESEM, TEM and XRD. The mechanical and thermal behavior of the aerogels were evaluated at different concentration levels of Fe3O4 nanoparticles (0, 10, 20 and 30 wt%). The compressive strengths of the hybrid aerogels at the strain of 80% for graphene aerogels containing 0, 10, 20 and 30 wt% Fe3O4 nanoparticles were determined to be 5.93, 12.96, 6.85, and 6.15 kPa, respectively. The highest mechanical properties were achieved for the sample containing 10 wt% Fe3O4 nanoparticles (FGA10). Thermal analysis revealed that FGA10 sample had a 15% less weight loss when heated up to 600 degrees C compared with that for the bare graphene aerogel, indicating the formation of a more thermally stable structure. Furthermore, adding Fe3O4 nanoparticles improved the thermal insulation performance of the graphene aerogel, since the dynamic heat transfer rate and heat dissipation rate of FGA10 were lower than those for the bare graphene aerogel. (C) 2022 Elsevier B.V. All rights reserved.
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页数:10
相关论文
共 46 条
[1]   Two-dimensional flexible nanoelectronics [J].
Akinwande, Deji ;
Petrone, Nicholas ;
Hone, James .
NATURE COMMUNICATIONS, 2014, 5
[2]   Trends in analytical separations of magnetic (nano)particles [J].
Alves, Monica N. ;
Miro, Manuel ;
Breadmore, Michael C. ;
Macka, Mirek .
TRAC-TRENDS IN ANALYTICAL CHEMISTRY, 2019, 114 :89-97
[3]   Graphene-based nanofiltration nanofiltration membranes for improving salt rejection, water flux and antifouling-A review [J].
Anand, Anisha ;
Unnikrishnan, Binesh ;
Mao, Ju-Yi ;
Lin, Han-Jia ;
Huang, Chih-Ching .
DESALINATION, 2018, 429 :119-133
[4]   Carbon-based electronics [J].
Avouris, Phaedon ;
Chen, Zhihong ;
Perebeinos, Vasili .
NATURE NANOTECHNOLOGY, 2007, 2 (10) :605-615
[5]  
Bonaccorso F, 2010, NAT PHOTONICS, V4, P611, DOI [10.1038/nphoton.2010.186, 10.1038/NPHOTON.2010.186]
[6]   Graphene Oxide: Preparation, Functionalization, and Electrochemical Applications [J].
Chen, Da ;
Feng, Hongbin ;
Li, Jinghong .
CHEMICAL REVIEWS, 2012, 112 (11) :6027-6053
[7]   A sensitive electrochemical DNA biosensor based on three-dimensional nitrogen-doped graphene and Fe3O4 nanoparticles [J].
Chen, Mei ;
Hou, Changjun ;
Huo, Danqun ;
Fa, Huanbao ;
Zhao, Yanan ;
Shen, Caihong .
SENSORS AND ACTUATORS B-CHEMICAL, 2017, 239 :421-429
[8]   In situ self-assembly of mild chemical reduction graphene for three-dimensional architectures [J].
Chen, Wufeng ;
Yan, Lifeng .
NANOSCALE, 2011, 3 (08) :3132-3137
[9]   Enhanced mechanical, thermal, and electric properties of graphene aerogels via supercritical ethanol drying and high-temperature thermal reduction [J].
Cheng, Yehong ;
Zhou, Shanbao ;
Hu, Ping ;
Zhao, Guangdong ;
Li, Yongxia ;
Zhang, Xinghong ;
Han, Wenbo .
SCIENTIFIC REPORTS, 2017, 7
[10]   One-pot reduction of graphene oxide at subzero temperatures [J].
Cui, Peng ;
Lee, Junghyun ;
Hwang, Eunhee ;
Lee, Hyoyoung .
CHEMICAL COMMUNICATIONS, 2011, 47 (45) :12370-12372