中国农业气象 ›› 2026, Vol. 47 ›› Issue (5): 714-729.doi: 10.3969/j.issn.1000-6362.2026.05.007

• 农业生物气象栏目 • 上一篇    下一篇

LED远红光采收前侧方补光对水培生菜生长和品质的影响

王可禹,林可欣,陈仁,刘文科,李文博,丁雨腾,丁一鸣,唐心苑,陈伟龙, 连锴烽,苏潼   

  1. 1. 佛山大学物理与光电工程学院/粤港澳智能微纳光电技术联合实验室,佛山 528225;2. 佛山大学农业与生物工程学院,佛山 528225;3. 中国农业科学院农业环境与可持续发展研究所/农业农村部设施农业节能与废弃物处理重点实验室,北京 100081;4. 广东中科半导体微纳制造技术研究院,佛山 528225
  • 收稿日期:2025-05-10 出版日期:2026-05-20 发布日期:2026-05-18
  • 作者简介:王可禹,E-mail:wky5790149123@163.com;林可欣,E-mail:janisa.linkexin@outlook.com
  • 基金资助:
    粤港澳智能微纳光电技术联合实验室项目(2020B1212030010);佛山市智慧植物工厂工程技术研究中心项目(佛科〔2019〕125号);广东佛山基地联合培养扶持项目(2023FCXM017);佛山大学2025年学生学术基金项目(XSJJ202507KJA01);佛山大学2025年实验室开放创新基金项目(KFCX2020-B36)

Effect of Lateral Supplemental LED Far−red Light on the Growth and Quality of Hydroponic Lettuce Before Harvest

WANG Ke-yu, LIN Ke-xin, CHEN Ren, LIU Wen-ke, LI Wen-bo, DING Yu-teng, DING Yi-ming, TANG Xin-yuan, CHEN Wei-long, LIAN Kai-feng, SU Tong   

  1. 1. School of Physics and Optoelectronic Engineering, Foshan University/Guangdong-Hong Kong-Macao Joint Laboratory of Intelligent Micro-Nano Optoelectronic Technology, Foshan 528225, China; 2. School of Agriculture and Biological Engineering, Foshan University, Foshan 528225; 3. Institute of Environment and Sustainable Development in Agriculture, Chinese Academy of Agricultural Sciences/Key Laboratory of Energy Conservation and Waste Management of Agricultural Structures, Ministry of Agriculture and Rural Affairs, Beijing 100081; 4. Guangdong Institute of Semiconductor Micro-Nano Manufacturing Technology, Foshan 528225
  • Received:2025-05-10 Online:2026-05-20 Published:2026-05-18

摘要:

为探究采收前侧方LED远红光(730nm)补光(基于红蓝光)对水培生菜生长及品质的调控作用,以意大利生菜为试验材料,在全智能环控植物工厂条件下开展试验。试验以种植架水培槽顶部照明为主光源,于采收前6d增设LED侧方补光处理,对照组(CK)为红蓝光(4:1,光强150.0μmol·m−2·s−1,补光时间3h),试验组在对照组基础上分别增加5种光强(12.5、25.050.075.0150.0μmol·m−2·s−1)的远红光,分析不同光处理对生菜产量和品质的影响,旨在缓解种植架生菜侧方光照不足的问题,以期为植物工厂水培生菜提质增效提供理论依据与技术参数。结果表明:与CK处理相比,补充远红光显著提高了最靠近侧方灯具的第1行和第2行生菜的地上部鲜重、干重及叶面积,且增幅随远红光光强增强而升高,当远红光强度为150.0μmol·m−2·s−1时,地上部干重较CK处理提高93%。补充远红光还增加了第1、第2行生菜的13层叶片的抗坏血酸含量,在远红光光强50.0μmol·m−2·s−1时,1行第2层叶片在50.0μmol·m2·s1远红光处理下抗坏血酸含量最高(213μg·g1随着远红光光强增加,第1、第2行生菜1−3层叶片的光合色素、可溶性蛋白、可溶性糖、总酚及类黄酮含量逐渐降低,在150.0μmol·m2·s1时达到最低值,此变化趋势与生菜生长的地上部鲜重、干重及叶面积等指标呈负相关。综合考虑生菜产量、品质指标及补光能耗,50.0μmol·m2·s1的侧方远红光补光处理栽培效果最佳。

关键词: 侧方补光, 远红光, 生长, 品质, 人工光植物工厂

Abstract:

To explore the regulatory effect of LED far-red side light (730nm) supplementation (based on red and blue light) before harvest on the growth and quality of hydroponic lettuce, an experiment was conducted using Italian lettuce as the test material in a fully intelligent and environmentally controlled plant factory. In this experiment, the top lighting of the hydroponic tank on the growing rack was used as the main light source, and side LED supplementary lighting was added 6d before harvesting. The control treatment (CK) received red and blue light (4:1, light intensity 150.0μmol·m2·s1, duration of 3h), while the experimental groups were supplemented with far-red light at 5 different intensities (12.5, 25.0, 50.0, 75.0 and 150.0μmol·m2·s1) on the basis of CK treatment. By analyzing the effects of different light treatments on lettuce yield and quality, this study aimed to alleviate the problem of insufficient side light for lettuce on planting racks and provide a theoretical basis and technical parameters for improving the quality and efficiency of hydroponic lettuce in plant factory with artificial light. The results showed that compared with CK, supplementary far-red light significantly increased the shoot fresh weight, dry weight and leaf area of lettuce in the 1st row (closest to the side lamps) and the 2nd row. The magnitude of the increase rised as the intensity of the far-red light increases. At a far-red light intensity of 150.0μmol·m−2·s−1, the shoot dry weight was 93% higher than that of CK. The complementary far-red side light also increased the ascorbic acid content in the 1st to 3rd leaf layers of lettuce in the 1st and 2nd rows. Specifically, at a far-red light intensity of 50.0μmol·m2·s1, the ascorbic acid content in the 2nd leaf layer of the 1st row reached the highest level (213μg·g1). However, as far-red light intensity increased, the contents of photosynthetic pigments, soluble proteins, soluble sugars, total phenols and flavonoids in the 1st to 3rd leaf layers of lettuce in the 1st and 2nd rows gradually decreased, reaching the lowest values at 150.0μmol·m2·s1. This trend was negatively correlated with the indicators such as the shoot fresh weight, shoot dry weight and leaf area of lettuce growth. Comprehensively considering lettuce yield, quality indicators and energy consumption for supplementary lighting, the far-red side light supplementation treatment at 50.0μmol·m2·s1 achieved the best cultivation effect.

Key words: Side lighting, Far-red light, Growth, Quality, Plant factory with artificial light