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The Impact of Spectral Composition of White LEDs on Spinach ( Spinacia oleracea ) Growth and Development

Author

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  • Chiara Burattini

    (Department of Astronautic, Electric and Energy Engineering (DIAEE), Sapienza University, 00184 Rome, Italy)

  • Benedetta Mattoni

    (Department of Astronautic, Electric and Energy Engineering (DIAEE), Sapienza University, 00184 Rome, Italy)

  • Fabio Bisegna

    (Department of Astronautic, Electric and Energy Engineering (DIAEE), Sapienza University, 00184 Rome, Italy)

Abstract

Light-emitting diodes (LED) are a promising light source for the cultivation of edible vegetables in greenhouses. The spectral radiation of the light sources has an impact on plants physiological parameters, as well as on morphological features. In this study the growth of spinach plants has been carried out in experimental boxes under two white LED treatments having different correlate color temperature (CCT): the cold lighting (CL) corresponded to 6500 K, while the warm lighting (WL) to 3000 K. The work was aimed to investigate the influence of the two light spectra on plant development and comparing the results. Results showed that the different lighting treatments impact differently on plant development and on growth parameters.

Suggested Citation

  • Chiara Burattini & Benedetta Mattoni & Fabio Bisegna, 2017. "The Impact of Spectral Composition of White LEDs on Spinach ( Spinacia oleracea ) Growth and Development," Energies, MDPI, vol. 10(9), pages 1-14, September.
  • Handle: RePEc:gam:jeners:v:10:y:2017:i:9:p:1383-:d:111647
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    References listed on IDEAS

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    1. Yeh, Naichia & Chung, Jen-Ping, 2009. "High-brightness LEDs--Energy efficient lighting sources and their potential in indoor plant cultivation," Renewable and Sustainable Energy Reviews, Elsevier, vol. 13(8), pages 2175-2180, October.
    2. Singh, Devesh & Basu, Chandrajit & Meinhardt-Wollweber, Merve & Roth, Bernhard, 2015. "LEDs for energy efficient greenhouse lighting," Renewable and Sustainable Energy Reviews, Elsevier, vol. 49(C), pages 139-147.
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    Cited by:

    1. Yong Deok Ahn & Sungwoo Bae & Suk-Ju Kang, 2017. "Power Controllable LED System with Increased Energy Efficiency Using Multi-Sensors for Plant Cultivation," Energies, MDPI, vol. 10(10), pages 1-13, October.

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