Ooi Amanda, Wong Aloysius, Ng Tien Khee, Marondedze Claudius, Gehring Christoph, Ooi Boon S
Division of Biological and Environmental Sciences and Engineering, 4700 King Abdullah University of Science and Technology, Thuwal 23955-6900, Kingdom of Saudi Arabia.
Division of Computer, Electrical, and Mathematical Sciences and Engineering, 4700 King Abdullah University of Science and Technology, Thuwal 23955-6900, Kingdom of Saudi Arabia.
Sci Rep. 2016 Sep 23;6:33885. doi: 10.1038/srep33885.
Indoor horticulture offers a sensible solution for sustainable food production and is becoming increasingly widespread. However, it incurs high energy and cost due to the use of artificial lighting such as high-pressure sodium lamps, fluorescent light or increasingly, the light-emitting diodes (LEDs). The energy efficiency and light quality of currently available horticultural lighting is suboptimal, and therefore less than ideal for sustainable and cost-effective large-scale plant production. Here, we demonstrate the use of high-powered single-wavelength lasers for indoor horticulture. They are highly energy-efficient and can be remotely guided to the site of plant growth, thus reducing on-site heat accumulation. Furthermore, laser beams can be tailored to match the absorption profiles of different plant species. We have developed a prototype laser growth chamber and demonstrate that plants grown under laser illumination can complete a full growth cycle from seed to seed with phenotypes resembling those of plants grown under LEDs reported previously. Importantly, the plants have lower expression of proteins diagnostic for light and radiation stress. The phenotypical, biochemical and proteome data show that the single-wavelength laser light is suitable for plant growth and therefore, potentially able to unlock the advantages of this next generation lighting technology for highly energy-efficient horticulture.
室内园艺为可持续粮食生产提供了一个明智的解决方案,并且正变得越来越普遍。然而,由于使用高压钠灯、荧光灯或越来越多使用的发光二极管(LED)等人工照明,其能源消耗和成本很高。目前可用的园艺照明的能源效率和光质量并不理想,因此对于可持续且具有成本效益的大规模植物生产来说不够理想。在此,我们展示了高功率单波长激光在室内园艺中的应用。它们具有很高的能源效率,并且可以远程导向植物生长的地点,从而减少现场的热量积累。此外,激光束可以进行调整以匹配不同植物物种的吸收光谱。我们开发了一个激光生长室原型,并证明在激光照射下生长的植物能够从种子到种子完成完整的生长周期,其表型与先前报道的在LED下生长的植物相似。重要的是,这些植物中用于诊断光和辐射胁迫的蛋白质表达较低。表型、生化和蛋白质组数据表明,单波长激光适用于植物生长,因此有可能为高能效园艺开启这种下一代照明技术的优势。