Rabchinskii Maxim K, Shiyanova Kseniya A, Brzhezinskaya Maria, Gudkov Maksim V, Saveliev Sviatoslav D, Stolyarova Dina Yu, Torkunov Mikhail K, Chumakov Ratibor G, Vdovichenko Artem Yu, Cherviakova Polina D, Novosadov Nikolai I, Nguen Diana Z, Ryvkina Natalia G, Shvidchenko Alexander V, Prasolov Nikita D, Melnikov Valery P
Ioffe Institute, Politekhnicheskaya St. 26, 194021 Saint Petersburg, Russia.
Semenov Federal Research Center for Chemical Physics, Russian Academy of Sciences, Kosygina St. 4, 119991 Moscow, Russia.
Nanomaterials (Basel). 2024 Oct 16;14(20):1664. doi: 10.3390/nano14201664.
Conductive polymer composites (CPCs) with nanocarbon fillers are at the high end of modern materials science, advancing current electronic applications. Herein, we establish the interplay between the chemistry and electrophysical properties of reduced graphene oxide (rGO), separately and as a filler for CPCs with the segregated structure conferred by the chemical composition of the initial graphene oxide (GO). A set of experimental methods, namely X-ray photoelectron spectroscopy (XPS), ultraviolet-visible spectroscopy, van der Paw and temperature-dependent sheet resistance measurements, along with dielectric spectroscopy, are employed to thoroughly examine the derived materials. The alterations in the composition of oxygen groups along with their beneficial effect on nitrogen doping upon GO reduction by hydrazine are tracked with the help of XPS. The slight defectiveness of the graphene network is found to boost the conductivity of the material due to facilitating the impact of the nitrogen lone-pair electrons in charge transport. In turn, a sharp drop in material conductivity is indicated upon further disruption of the π-conjugated network, predominantly governing the charge transport. Particularly, the transition from the Mott variable hopping transport mechanism to the Efros-Shklovsky one is signified. Finally, the impact of rGO chemistry and physics on the electrophysical properties of CPCs with the segregated structure is evaluated. Taken together, our results give a hint at how GO chemistry manifests the properties of rGO and the CPC derived from it, offering compelling opportunities for their practical applications.
含有纳米碳填料的导电聚合物复合材料(CPC)处于现代材料科学的前沿,推动着当前电子应用的发展。在此,我们分别研究了还原氧化石墨烯(rGO)的化学性质与电物理性质之间的相互作用,并将其作为具有由初始氧化石墨烯(GO)化学组成赋予的偏析结构的CPC的填料进行研究。我们采用了一系列实验方法,即X射线光电子能谱(XPS)、紫外可见光谱、范德堡法和与温度相关的薄层电阻测量,以及介电谱,来全面研究所得材料。借助XPS追踪了在通过肼还原GO时氧基团组成的变化及其对氮掺杂的有益影响。发现石墨烯网络的轻微缺陷会由于促进氮孤对电子在电荷传输中的作用而提高材料的导电性。反过来,当π共轭网络进一步受到破坏时,材料导电性会急剧下降,而π共轭网络主要控制着电荷传输。特别是,这标志着从莫特可变跳跃传输机制向埃弗罗斯 - 什克洛夫斯基机制的转变。最后,评估了rGO的化学和物理性质对具有偏析结构的CPC电物理性质的影响。综上所述,我们的结果提示了GO化学性质如何体现rGO及其衍生的CPC的性质,为它们的实际应用提供了引人注目的机会。