Shen Chen, Barrios Elizabeth, Zhai Lei
NanoScience Technology Center, University of Central Florida, Orlando, Florida 32826, United States.
Department of Material Science and Engineering and Department of Chemistry, University of Central Florida, Orlando, Florida 32816, United States.
ACS Omega. 2018 Apr 10;3(4):4006-4016. doi: 10.1021/acsomega.8b00492. eCollection 2018 Apr 30.
Bulk polymer-derived ceramic (PDC) composites of SiCO with an embedded graphene network were produced using graphene-coated poly(vinyl alcohol) (PVA) foams as templates. The pyrolysis of green bodies containing cross-linked polysiloxane, PVA foams, and graphene oxide (GO) resulted in the decomposition of PVA foams, compression of GO layers, and formation of graphitic domains adjacent to GO within the SiCO composite, leading to SiCO composites with an embedded graphene network. The SiCO/GO composite, with about 1.5% GO in the ceramic matrix, offered an increase in the electrical conductivity by more than 4 orders of magnitude compared to that of pure SiCO ceramics. Additionally, the unique graphene network in the SiCO demonstrated a drop in the observed thermal conductivity of the composite (∼0.8 W m K). Young's modulus of the as-fabricated SiCO/GO composites was found to be around 210 MPa, which is notably higher than the reported values for similar composites fabricated from only ceramic precursors and PVA foams. The present approach demonstrates a facile and cost-effective method of producing bulk PDC composites with high electrical conductivity, good thermal stability, and low thermal conductivity.
以涂覆有石墨烯的聚乙烯醇(PVA)泡沫为模板,制备了具有嵌入式石墨烯网络的块状聚合物衍生陶瓷(PDC)基SiCO复合材料。含有交联聚硅氧烷、PVA泡沫和氧化石墨烯(GO)的坯体热解导致PVA泡沫分解、GO层压缩,并在SiCO复合材料中形成与GO相邻的石墨域,从而得到具有嵌入式石墨烯网络的SiCO复合材料。在陶瓷基体中含有约1.5% GO的SiCO/GO复合材料,与纯SiCO陶瓷相比,其电导率提高了4个多数量级。此外,SiCO中独特的石墨烯网络使复合材料的热导率下降(约0.8 W m⁻¹ K⁻¹)。发现所制备的SiCO/GO复合材料的杨氏模量约为210 MPa,明显高于仅由陶瓷前驱体和PVA泡沫制备的类似复合材料的报道值。本方法展示了一种简便且经济高效的方法,用于制备具有高电导率、良好热稳定性和低热导率的块状PDC复合材料。