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石墨和氧化石墨烯对碳化钍微观结构及热性能的影响。

Effect of graphite and graphene oxide on thorium carbide microstructural and thermal properties.

作者信息

Corradetti S, Carturan S M, Ballan M, Eloirdi R, Amador Celdran P, Walter O, Staicu D, Dieste Blanco O, Andrighetto A, Biasetto L

机构信息

INFN-Laboratori Nazionali di Legnaro, Viale dell'Università 2, 35020, Legnaro, PD, Italy.

Dipartimento di Fisica e Astronomia, Università di Padova, Via Marzolo 8, 5131, Padua, Italy.

出版信息

Sci Rep. 2021 Apr 27;11(1):9058. doi: 10.1038/s41598-021-87621-0.

Abstract

Thorium carbide to be tested as target material for the production of Ac with the ISOL method, was produced via carbothermal reduction of ThO nanoparticles by graphite and graphene oxide, respectively. The use of graphene oxide (GO) as carbon source resulted in a reduced reactivity compared to graphite, confirmed by the presence of unreacted ThO mainly in the core of the samples. The reacted ThO or ThC-GO showed a faster reactivity in air, mainly observed as ThC amorphization. The specific surface area of the ThC-GO samples was almost doubled compared to ThC-graphite samples. The effect of these microstructural features was analysed in terms of thermal diffusivity and calculated thermal conductivity that were both reduced in ThC-GO samples, however the difference with ThC-graphite samples decreased at increasing temperature. The present study shows that the use of unreduced GO inhibits the solid-state reaction between ThO and C; on the other hand, the high reactivity of the ThC so produced is expected to be beneficial for the Ac production with the ISOL method, affording a high release efficiency. It is expected that the use of reduced GO could represent a good solution for highly efficient ThC targets.

摘要

碳化钍将作为采用同位素分离法生产锕的靶材进行测试,分别通过石墨和氧化石墨烯对氧化钍纳米颗粒进行碳热还原制备而成。与石墨相比,使用氧化石墨烯(GO)作为碳源导致反应活性降低,这通过主要在样品核心中存在未反应的氧化钍得以证实。反应后的氧化钍或碳化钍 - 氧化石墨烯在空气中表现出更快的反应活性,主要表现为碳化钍非晶化。与碳化钍 - 石墨样品相比,碳化钍 - 氧化石墨烯样品的比表面积几乎增加了一倍。从热扩散率和计算得到的热导率方面分析了这些微观结构特征的影响,两者在碳化钍 - 氧化石墨烯样品中均降低,然而随着温度升高,与碳化钍 - 石墨样品的差异减小。本研究表明,未还原的氧化石墨烯的使用抑制了氧化钍与碳之间的固态反应;另一方面,如此制备的碳化钍的高反应活性预计对采用同位素分离法生产锕有益,可提供高释放效率。预计使用还原的氧化石墨烯可能是制备高效碳化钍靶材的良好解决方案。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/bc3a/8079694/32b967e6432a/41598_2021_87621_Fig1_HTML.jpg

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