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使用脂肪酸酰胺作为澄清剂制备光学级聚乳酸。

Toward Optical Quality Polylactide Using Fatty Acid Amides as Clarifiers.

作者信息

Kesting Matthias Balthasar, Hochstädt Sebastian, Terbrack Eric, Ruder Anna Maria, Ahrens Bernd, Chassé Walter, Thomas Christian, Schweizer Stefan, Hansen Michael Ryan, Meyer Jörg, Seide Gunnar

机构信息

Department Lippstadt 1, Hamm-Lippstadt University of Applied Sciences, Marker-Allee 76-78, 59063 Hamm, Germany.

Aachen-Maastricht Institute for Biobased Materials (AMIBM), Maastricht University, Bright-lands Chemelot Campus, Urmonderbaan 22, 6167 RD Geleen, The Netherlands.

出版信息

Biomacromolecules. 2025 Sep 8;26(9):6177-6191. doi: 10.1021/acs.biomac.5c01123. Epub 2025 Aug 1.

DOI:10.1021/acs.biomac.5c01123
PMID:40749979
Abstract

Polylactide (PLA) represents a sustainable alternative to common optical polymers in lighting applications. However, its application temperature is currently limited, since the material crystallizes and becomes cloudy when exposed to temperatures above 55-65 °C. Here, ,'-ethylenebis(stearamide) and ,'-ethylenebis(12-hydroxystearamide) are applied as clarifiers, and their effects are known for foils. This approach is extended to bulky materials ( = 1.5 mm). Optical characterization was complemented by microscopy, differential scanning calorimetry (DSC), and X-ray diffraction (XRD). Additionally, NMR was applied to understand the effects of the fatty acid amides on a molecular level. All methods confirm the nucleating effects of both additives, while the crystallinity and crystal structure remain unchanged. A controlled crystallization at lower temperatures is discovered to promote the effect of the clarifiers by further reducing crystallite size. Finally, the crystallized samples are exposed to 80 °C and found to maintain high optical transmission. A tempering step at low temperatures is suggested to maximize clarifying effects.

摘要

聚乳酸(PLA)是照明应用中常见光学聚合物的一种可持续替代品。然而,其应用温度目前受到限制,因为当材料暴露于55 - 65°C以上的温度时会结晶并变得浑浊。在此,N,N'-亚乙基双硬脂酰胺和N,N'-亚乙基双(12 - 羟基硬脂酰胺)被用作澄清剂,它们对薄膜的作用是已知的。这种方法被扩展到厚材料(厚度 = 1.5毫米)。通过显微镜、差示扫描量热法(DSC)和X射线衍射(XRD)对光学特性进行了补充。此外,应用核磁共振(NMR)从分子水平了解脂肪酸酰胺的作用。所有方法都证实了两种添加剂的成核作用,而结晶度和晶体结构保持不变。发现低温下的受控结晶通过进一步减小微晶尺寸来促进澄清剂的效果。最后,将结晶样品暴露于80°C,发现其保持高透光率。建议进行低温回火步骤以最大化澄清效果。

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