Synchrotron Microfocus Wide-Angle X-ray Scattering Reveals the Evolution of Radial Microstructural Heterogeneity in γ-Irradiated/Heated Polyacrylonitrile Fibers

IF 3.3 3区 化学 Q2 CHEMISTRY, PHYSICAL
Gaohui Wang, Ruiqi Shao, Feng Tian, Haiting Shi, Wei Wang, Hao Zhang, Tianyu Li, Xiuhong Li, Zhiwei Xu
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Abstract

In order to accurately understand the radial structural evolution of polyacrylonitrile (PAN) fibers in irradiation and heat treatment, trapezoidal scanning was performed on the fibers with synchrotron microfocus wide-angle X-ray scattering (μ-WAXS), and radial scanning with confocal Raman was used on the cross section of the fibers. The results indicate that PAN precursors and γ-irradiated/heated PAN fibers present a heterogeneous structure and share the same trend in terms of microstructure changes at different radial positions. The crystal size, crystallinity, and orientation of the (100) crystal plane in the skin layer of fibers are larger than that those in the core layer, and the d spacing of the (100) crystal plane in the skin layer of fibers is smaller than that present in the core layer. The difference is that γ-irradiated PAN fibers have no secondary crystallization in the core layer during heat treatment; this is because the strong penetration of γ irradiation can act on the core of the fibers. In addition, some tests including WAXS were employed to characterize the evolution of the crystalline structure, thermal properties, and chemical structure of the PAN fiber as a whole after irradiation and heat treatment. Combined with the analysis of regional structure evolution, the above results show that the irradiation treatment advances the inflection points of the crystal structures of PAN fibers in the skin and core layers during heat treatment, and the strong penetration of γ irradiation caused both to advance by a similar amount of time. The coupling of irradiation and heat treatment resulted in smaller differences between the skin and core layers of PAN preoxidized fibers in terms of d spacing, orientation, and graphitized structure.

Abstract Image

同步辐射微焦广角 X 射线散射揭示了 γ-辐照/加热聚丙烯腈纤维径向微结构异质性的演变过程
为了准确了解聚丙烯腈(PAN)纤维在辐照和热处理过程中的径向结构演变,利用同步辐射微焦广角 X 射线散射(μ-WAXS)对纤维进行了梯形扫描,并利用共焦拉曼对纤维横截面进行了径向扫描。结果表明,PAN 前驱体和经γ辐照/加热的 PAN 纤维呈现异质结构,并且在不同径向位置的微观结构变化趋势相同。纤维表皮层(100)晶面的晶体尺寸、结晶度和取向均大于芯层,纤维表皮层(100)晶面的 d 间距小于芯层。所不同的是,经过γ辐照的 PAN 纤维在热处理过程中不会在芯层出现二次结晶;这是因为γ辐照的强穿透力可作用于纤维的芯部。此外,还采用了包括 WAXS 在内的一些测试来表征辐照和热处理后 PAN 纤维整体的结晶结构、热性能和化学结构的演变。结合区域结构演变分析,上述结果表明,在热处理过程中,辐照处理使 PAN 纤维表皮层和芯层的晶体结构拐点提前,γ 辐照的强穿透力使两者的拐点提前时间相近。辐照和热处理的耦合使 PAN 预氧化纤维的表皮层和芯层在 d 间距、取向和石墨化结构方面的差异较小。
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来源期刊
The Journal of Physical Chemistry C
The Journal of Physical Chemistry C 化学-材料科学:综合
CiteScore
6.50
自引率
8.10%
发文量
2047
审稿时长
1.8 months
期刊介绍: The Journal of Physical Chemistry A/B/C is devoted to reporting new and original experimental and theoretical basic research of interest to physical chemists, biophysical chemists, and chemical physicists.
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