超越双层:松果鳞片的多层吸湿驱动。

IF 2.7 4区 材料科学 Q3 MATERIALS SCIENCE, MULTIDISCIPLINARY
Beilstein Journal of Nanotechnology Pub Date : 2025-09-29 eCollection Date: 2025-01-01 DOI:10.3762/bjnano.16.119
Kim Ulrich, Max David Mylo, Tom Masselter, Fabian Scheckenbach, Sophia Fischerbauer, Martin Nopens, Silja Flenner, Imke Greving, Linnea Hesse, Thomas Speck
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引用次数: 0

摘要

研究了松果鳞片的各向异性吸湿行为及其对弯曲运动的影响,以及对仿生驱动的影响。利用重力吸水测量、基于同步辐射的纳米全息断层扫描和数字体积相关分析,观察了组织间和组织内吸湿性肿胀/收缩的变化。此外,测定了松果鳞片组织含水量随相对湿度的变化规律。组织间存在明显差异,吸附和解吸之间存在明显的滞后性。从简化的双层模型到复杂的重塑尺度,对几何结构进行了有限元分析。模拟结果表明,由于高估了厚组织纤维刚度的贡献,低估了双层几何形状的弯曲。在棕色组织基质中嵌入离散纤维的几何形状更准确地再现了实验中观察到的弯曲角度。这突出了所选择的材料性质和组织安排的重要性预测松果尺度弯曲在硅。通过促进对松果尺度生物力学的深入了解,这些结果也支持生物启发技术应用的发展。未来的研究应完善组织力学特性,并整合基于高分辨率计算机层析成像的几何图形,以进一步阐明吸湿驱动的机制。这种综合方法将把实验结果与计算建模和推进植物生物力学和仿生转移联系起来。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Beyond the bilayer: multilayered hygroscopic actuation in pine cone scales.

The anisotropic hygroscopic behavior of pine cone scales and its effect on bending motion, with implications for bioinspired actuation, is investigated. Using gravimetric water uptake measurements, synchrotron radiation-based nano-holotomography, and digital volume correlation analysis, inter- and intra-tissue variations of hygroscopic swelling/shrinkage were observed. In addition, the moisture content of pine cone scale tissues was measured as a function of relative humidity. There were distinct differences between tissues and a pronounced hysteresis between sorption and desorption. Finite element analysis was performed on geometries ranging from simplified bilayer models to complex remodeled scales. Simulation results showed an underestimation of the bending of bilayer geometries due to an overestimated contribution of sclerenchyma fiber stiffness. Geometries with discrete fibers embedded in a brown tissue matrix more accurately reproduced the bending angles observed in experiments. This highlights the importance of the chosen material properties and tissue arrangements for predicting pine cone scale bending in silico. By contributing to a deeper understanding of pine cone scale biomechanics, these results also support the development of bioinspired technical applications. Future studies should refine tissue mechanical properties and integrate high-resolution computed tomography-based geometries to further elucidate the mechanisms underlying hygroscopic actuation. This integrative approach will bridge experimental findings with computational modeling and advance plant biomechanics and biomimetic transfer.

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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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