LED 辐射光谱中远红区域的光子对甜菜植物(Beta vulgaris L. ssp.)

V. Zelenkov, V. Latushkin, S. Gavrilov, P. Vernik, M. Ivanova
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摘要

相关性和方法。从确定栽培生物特征和育种实践的角度来看,借助照明设备控制甜菜植物生长和发育的任务很有意义。研究的目的是确定植物在本体发育的初始阶段(甜菜种子的萌发)对低能量单色辐射影响的反应。为此,在黑暗(对照)和不同波长(380 纳米、440 纳米、525 纳米、660 纳米和 730 纳米)的连续光照下萌发了杂交 Smena 的种子。甜菜种子和萌芽对单色光照射的反应取决于波长 用单色远红光照射种子萌芽时,与对照(黑暗萌芽)相比,萌芽能量降低 23%,种子萌发率降低 39%,萌芽高度和地上生物量降低 21.8%。红光的负面影响也有类似的指标。暴露在紫外线 A 光(380 纳米)下,发芽能量增加了 4%,但发芽率反而下降了 12%。芽的陆地生物量也减少了(9.9%)。绿光和蓝光照射对生长有积极影响:绿光光谱下,芽的陆地生物量增加了 19.8%,蓝光增加了 7.3%。同时,与对照组相比,发芽能和发芽率都没有下降。在蓝光影响下,发芽能甚至增加了 12%。在暗光发芽条件下,第 10 天会形成伸长的黄化植株,而在绿光、蓝光和紫外线-A 照射条件下,则会形成和谐发展的深绿色嫩芽。
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 photons of the far red region in the spectrum of LED radiation on the growth and development of sugar beet plants (Beta vulgaris L. ssp. vulgaris var. saccharifera Alef.)
Relevance and methodology. The task of controlling the growth and development of sugar beet plants with the help of lighting devices is of interest from the point of view of identifying biological features of the culture and in breeding practice. The purpose of the research is to determine the response of plants to the effects of low–energy monochrome radiation at the initial stage of ontogenesis (germination of seeds (coplodia) sugar beet). In this regard, the seeds of the hybrid Smena were germinated in the dark (control) and under different variants of continuous illumination with wavelengths of 380 nm, 440 nm, 525 nm, 660 nm and 730 nm.Results. The reaction of sugar beet seeds and sprouts to illumination with monochromatic light depends on the wavelength Germination of seeds when irradiated with monochromatic far-red light leads to a decrease in germination energy by 23%, seed germination by 39%, the height of sprouts and aboveground biomass by 21.8% compared with the control (dark germination). Similar indicators were observed for the negative effect of red light. Exposure to UV-A light (380 nm) led to an increase in germination energy by 4%, but germination, on the contrary, decreased by 12%. The terrestrial biomass of sprouts also decreased (by 9.9%). Irradiation with green and blue light had a positive effect on growth: the terrestrial biomass of sprouts increased by 19.8% with a green spectrum and 7.3% blue. At the same time, there was no decrease in germination energy and germination compared to the control. The germination energy under the influence of blue light even increased by 12%. With dark germination, elongated etiolated plants were formed on the 10th day, whereas in the variants of green, blue and UV-A irradiation, harmoniously developed dark green shoots were formed.
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