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Laser micromarking technique in studying the negative gravitropism in pea stem

机译:激光微马车技术研究豌豆茎中负祖先作

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摘要

A laser micromarking technique on plant epidermis was developed to study how a plant can reduce the stress in bending behavior by controlling the growth and morphogenesis. The negative gravitropism in a pea seedling (Pisum sativum L.) was discussed based on the time-dependent displacement of laser marking points which were formed by spatially-selective laser ablation of the cuticle layer that covers the outer surface of a plant. The elongation of the stem in the horizontal direction was remarkable in the first half of the gravitropism. The elongation percentages of the stem length between laser-marking points at around upper surface, middle, and bottom surface were evaluated to be 2.57, 4.87, and 7.70%, respectively. The characteristic feature of the stem bending in gravitropism is the elongation even at the upper surface region, that is, inside of the bending. This is a different feature from cantilever beams for structural materials like metals and polymers, where the compression of the upper surface and elongation of the bottom surface are caused by bending. Another laser micromarking technique was developed to improve the resolution of a dot-matrix pattern by fluorescent material transfer to a plant through a masking film with a micro-hole matrix pattern. Similar time-dependent displacement behavior was observed for a fluorescent dot-marked stem showing a feedback control loop in the mechanical optimization. These results suggested that plants solve the problem of the stress in stem bending through growth. The laser micromarking is an effective method for studying the mechanical optimization in plants.
机译:开发了一种对植物表皮的激光微观技术,以研究植物如何通过控制生长和形态发生来降低弯曲行为的应力。基于由覆盖植物的外表面的角质层层的空间选择性激光烧蚀形成的激光标记点的时间依赖性位移来讨论豌豆幼苗(PISUM Sativum L.)中的负致颅脂。茎在水平方向上的伸长率在重物的前半部是显着的。在上表面,中间和底表面周围的激光标记点之间的茎长的伸长率分别评价为2.57,4.87和7.70%。茎弯曲的茎弯曲的特征是即使在上表面区域也是伸长的,即弯曲的内部。这是来自悬臂梁的用于结构材料的悬臂梁,如金属和聚合物,其中底表面的上表面压缩和底表面的伸长率是由弯曲引起的。开发了另一种激光微观技术以通过具有微孔矩阵图案的掩模膜通过掩模膜改善荧光材料转移到植物的点矩阵图案的分辨率。对于荧光点标记的杆,观察到类似的时间依赖性位移行为,示出了在机械优化中的反馈控制回路。这些结果表明,植物通过生长解决茎弯曲的应力的问题。激光微观是研究植物机械优化的有效方法。

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