辐射诱导的空位饱和对纳米粒子一阶相变的影响:模型的启示。

IF 2.6 4区 材料科学 Q3 MATERIALS SCIENCE, MULTIDISCIPLINARY
Beilstein Journal of Nanotechnology Pub Date : 2024-11-21 eCollection Date: 2024-01-01 DOI:10.3762/bjnano.15.117
Aram Shirinyan, Yuriy Bilogorodskyy
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引用次数: 0

摘要

通过采用具有多态相变的纳米材料模型,并使用热力学方法描述空位饱和度、辐照剂量、粉末分散和表面能的影响,我们证明了辐射诱导相变的可能性以及纳米粒子的辐射稳定区。我们利用纳米粒子从体心立方体α相到面心立方体β相的转变,以及从β相到α相的反向转变,作为一阶相变的模型系统。我们通过新相原子核的出现和生长纳入了成核现象,从而形成了α+β两相体系,并强调了考虑成核现象的重要性。我们的模型研究表明,由于表面效应,极小的 α 相粒子是不稳定的(而极小的 β 相粒子是稳定的)。在不同尺寸和参数的中间区域,辐射诱导的缺陷变得非常重要,因此在没有辐照的情况下,α 相粒子是不稳定的,而在辐照下则变得稳定。在大尺寸和低温条件下,由于体积驱动力的作用,无论辐照与否,α→β 转变都不会发生;最初,α 相粒子是稳定的,而 β 相粒子是不稳定的。在某些情况下,成核需要很大的额外能量变化,导致相变波动的概率很低。对辐照下铁粒子的计算证实了这一行为。具有空位迁移能高、缺陷扩散系数小、一阶相变温度低等特点的物质可作为纳米系统中辐射诱导相变的合适候选物质。陶瓷纳米材料具有较高的空位迁移能,其行为会受到辐射剂量的显著影响。相比之下,大多数金属的空位迁移能较小,抗辐照能力较强,因此是核材料的推荐候选材料。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Effect of radiation-induced vacancy saturation on the first-order phase transformation in nanoparticles: insights from a model.

By employing a model of nanomaterials with polymorphic phase transitions and using a thermodynamic approach to describe the effects of vacancy saturation, irradiation dose, powder dispersion, and surface energies, we demonstrate the possibility of radiation-induced phase transitions and the zones of radiation stability for nanoparticles. We utilize nanoparticles exhibiting transitions from the body-centered cubic α phase to the face-centered cubic β phase, and the reverse transition from β phase to α phase, as a model system for first-order phase transformations. We incorporate nucleation through the appearance and growth of the nucleus of a new phase, resulting in the formation of a two-phase α+β system, and we highlight the importance of accounting for nucleation. Our model study reveals that very small α-phase particles are unstable (while very small β-phase particles are stable) because of surface effects. There is an intermediate zone of sizes and parameters where radiation-induced defects become important so that the α-phase particle is unstable without irradiation but becomes stable under irradiation. For large sizes and low temperatures, the α→β transformation cannot occur regardless of irradiation because of bulk driving forces; initially, α-phase particles are stable, whereas the β-phase particles are unstable. In some cases, nucleation requires a large additional energy change, resulting in a low probability of phase change fluctuations. This behavior is confirmed by calculations for iron particles under irradiation. Substances characterized by high vacancy migration energy, small diffusion coefficients of defects, and low temperatures of first-order phase transitions can serve as suitable candidates for radiation-induced phase transitions in nanosystems. Ceramic nanomaterials, which possess high vacancy migration energy, will have their behavior significantly influenced by radiation doses. In contrast, most metals exhibit small vacancy migration energy and demonstrate better resistance to irradiation, making them recommended candidates for nuclear materials.

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来源期刊
Beilstein Journal of Nanotechnology
Beilstein Journal of Nanotechnology NANOSCIENCE & NANOTECHNOLOGY-MATERIALS SCIENCE, MULTIDISCIPLINARY
CiteScore
5.70
自引率
3.20%
发文量
109
审稿时长
2 months
期刊介绍: The Beilstein Journal of Nanotechnology is an international, peer-reviewed, Open Access journal. It provides a unique platform for rapid publication without any charges (free for author and reader) – Platinum Open Access. The content is freely accessible 365 days a year to any user worldwide. Articles are available online immediately upon publication and are publicly archived in all major repositories. In addition, it provides a platform for publishing thematic issues (theme-based collections of articles) on topical issues in nanoscience and nanotechnology. The journal is published and completely funded by the Beilstein-Institut, a non-profit foundation located in Frankfurt am Main, Germany. The editor-in-chief is Professor Thomas Schimmel – Karlsruhe Institute of Technology. He is supported by more than 20 associate editors who are responsible for a particular subject area within the scope of the journal.
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