利用CJP技术的3D打印技术制作导电陶瓷的含铂碳纳米结构

O. Zolotarenko, E. Rudakova, A. Zolotarenko, N. Akhanova, M. Ualkhanova, D. Shchur, M. Gabdullin, N. Gavrylyuk, T. Myronenko, M. Chymbai, I. Zagorulko, Yuriy O. Tarasenko, O. Havryliuk
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引用次数: 4

摘要

采用电弧等离子体化学方法,将“细粒致密石墨”(FGDG-7)优质石墨电极填充催化剂Pt,在氦气环境中蒸发制备了碳纳米结构(CNS)。在合成过程中,主要合成了多壁碳纳米管(MWCNT)和单壁碳纳米管(SWCNT)、富勒烯、石墨烯包层和纳米复合材料。在阴极电极上还合成了生长形式的沉积。所有的合成产物都在微观和纳米水平上进行了分析,这使得分析铂蒸气对碳纳米材料(CNM)形成的影响成为可能。研究了FGDG-7石墨在气体介质中电化学合成产物中催化剂(铂)原子的不均匀分布。分析发现,铂在合成产物中呈面心立方(FCC)晶格状态,分布如下:沉积核小于< 0.001 %,沉积壳小于< 1%,壁灰大于> 1%。研究了六方石墨混合菱形石墨相的铂镀层的形貌和组成。在研究中,进行了空气中的差热分析(TG, DTG, DTA),从而可以确定合成产物的组成。已经确定的事实是,与不含铂的沉积层组分相比,含铂的沉积层组分更耐热。所得的碳纳米管(CNTs)直径(5-25 nm)和长度(1.5-2 μm)与不含铂的碳纳米管(CNTs)没有区别,但有一些异常。在研究含铂碳纳米结构对CJP(陶瓷打印)技术3D打印的适用性时,发现对于含铂炭黑的使用,需要进行初步的短期处理,即在特殊的“球磨机”中研磨或通过细筛进行最小的摩擦,以产生均匀的产品。此前的研究表明,这种含铂碳纳米结构已经可以用于CJP技术的3D打印,或者用于FDM、SLA等3D打印技术的新型复合材料。
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Platinum-containing carbon nanostructures for the creation of electrically conductive ceramics using 3D printing of CJP technology
Carbon nanostructures (CNS) were synthesized by the electric arc plasma chemical method during the evaporation of a high-quality graphite electrode of the brand “fine-grained dense graphite” (FGDG-7) filled with a catalyst (Pt), which was evaporated in a helium environment. In the synthesis process, the following were synthesized: multi-walled (MWCNT) and single-walled carbon nanotubes (SWCNT), fullerenes, graphene packets and nanocomposites. A deposit in the form of growth on the cathode electrode was also synthesized. All synthesis products were analyzed at the micro- and nanolevels, which made it possible to analyze the influence of platinum vapors on the formation of carbon nanomaterials (CNM). The non-uniform distribution of catalyst atoms (platinum) in the products of electrochemical synthesis in a gas medium using FGDG-7 graphite was investigated. During the analysis, it was found that platinum is in the state of the face-centered cubic (FCC) lattice and is distributed in the synthesis products as follows: the core of the deposit is less than < 0.001 %, the shell of the deposit is less than < 1 %, the wall soot is more than > 1 %. The morphology and composition of the platinum deposit, which has a hexagonal graphite structure with an admixture of a rhombohedral graphite phase, was studied. In the studies, differential thermal analysis in air (TG, DTG, DTA) was carried out, which made it possible to identify the composition of the synthesis products. It is an established fact that the parts of the deposit with platinum are more heat-resistant compared to the deposit components that do not contain Pt. The resulting carbon nanotubes (CNTs) in diameter (5–25 nm) and length (1.5–2 μm) do not differ from those obtained without the participation of platinum, except for some anomalies. When studying the suitability of platinum-containing carbon nanostructures for 3D printing of CJP (ceramic printing) technology, it was found that for the use of platinum-containing carbon black, it is necessary to carry out a preliminary short-term treatment, namely, grinding in special “ball mills” or rubbing through a fine sieve with minimal effort to create uniformity product. Previous studies have shown that such platinum-containing carbon nanostructures can already be used in 3D printing of CJP technology, or to create new composites for 3D printing technologies of FDM, SLA.
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