Mehmood Zahid, Shah Syed Aizaz Ali, Omer Saeed, Idrees Ramsha, Saeed Shaukat
Department of Chemistry, Pakistan Institute of Engineering and Applied Sciences (PIEAS) Islamabad-45650 Pakistan
RSC Adv. 2024 Mar 4;14(11):7641-7654. doi: 10.1039/d4ra00329b. eCollection 2024 Feb 29.
High-purity reduced graphene oxide (RGO or rGO) with appreciable conductivity is a desired conductive filler for lightweight polymer composites used in coatings, electronics, catalysts, electromagnetic interference (EMI) shielding, and energy storage devices. However, the intrinsic conductivity and the uniform dispersion of RGO in relatively polar matrices are challenging, leading to poor overall conductivity and performance of the composite material. The reported study improved the RGO intrinsic conductivity by increasing its C/O ratio while also simultaneously enhancing its compatibility with the polyimide (PI) matrix through ester linkages for better dispersion. A two-step reduction method drastically increased the number of structural defects and carbon content in the resulting RGO, corresponding to a maximum / and C/O of 1.54 and ∼87, respectively. Moreover, the 2D nanosheets with limited hydroxyl (-OH) groups effectively interacted with anhydride-terminated polyamic acid (AT-PAA) through chemical linkages to make high-performance RGO/PI nanocomposites. Consequently, the polymer matrix composites possessed the highest direct current conductivity of 15.27 ± 0.61 S cm for 20 wt% of the prepared RGO. Additionally, the composite material was highly stiff (3.945 GPa) yet flexible (easily bent through 180°), lightweight (∼0.34 g cm), and capable of forming thin films (162 ± 15 μm). Unlike most polymer matrix composites, it showcased one of its class's highest thermal stabilities (a weight loss of only 5% at 638 °C). Ultimately, the composite performed as an effective electromagnetic interference (EMI) shielding material in the X-Band (8 to 12 GHz), demonstrating outstanding shielding effectiveness (SE), shielding effectiveness per unit thickness (SE), specific shielding effectiveness (SSE), and absolute shielding effectiveness (SSE) of 46 dB, 2778 dB cm, 138 dB cm g, and 8358 dB cm g, respectively. As a consequence of this research, the high-purity RGO and its high-performance PI matrix nanocomposites are anticipated to find practical applications in conductive coatings and flexible substrates demanding high-temperature stability.
具有可观导电性的高纯度还原氧化石墨烯(RGO或rGO)是用于涂料、电子、催化剂、电磁干扰(EMI)屏蔽和储能设备的轻质聚合物复合材料所需的导电填料。然而,RGO在相对极性基质中的本征导电性和均匀分散具有挑战性,导致复合材料的整体导电性和性能较差。报道的研究通过提高RGO的C/O比来改善其本征导电性,同时还通过酯键增强其与聚酰亚胺(PI)基质的相容性以实现更好的分散。两步还原法极大地增加了所得RGO中的结构缺陷数量和碳含量,对应的最大C/O比分别为1.54和87。此外,具有有限羟基(-OH)基团的二维纳米片通过化学键与酸酐封端的聚酰胺酸(AT-PAA)有效相互作用,从而制备出高性能的RGO/PI纳米复合材料。因此,对于20 wt%的制备的RGO,聚合物基复合材料具有最高的直流电导率,为15.27±0.61 S/cm。此外,该复合材料具有高刚性(3.945 GPa)但柔韧性好(可轻松弯曲180°)、重量轻(0.34 g/cm),并且能够形成薄膜(162±15μm)。与大多数聚合物基复合材料不同,它展现出同类材料中最高的热稳定性之一(在638°C时重量损失仅5%)。最终,该复合材料在X波段(8至12 GHz)中作为一种有效的电磁干扰(EMI)屏蔽材料,分别展示出46 dB、2778 dB/cm、138 dB/(cm·g)和8358 dB/(cm·g)的出色屏蔽效能(SE)、单位厚度屏蔽效能(SE)、比屏蔽效能(SSE)和绝对屏蔽效能(SSE)。这项研究的结果表明,高纯度RGO及其高性能PI基纳米复合材料有望在要求高温稳定性的导电涂料和柔性基板中找到实际应用。