The Effect of UV Light in Accelerating IoT-Based Hydroponic Plant Growth †
Abstract
1. Introduction
2. Materials and Methods
- (a)
- RQ1: How does ultraviolet (UV) light affect plant growth parameters in hydroponic systems?
- (b)
- RQ2: To what extent can the utilization of the Internet of Things (IoT) improve the precision and effectiveness of UV light intensity management in hydroponic systems?
- (c)
- RQ3: What are the challenges and solutions in the implementation of IoT-based UV light technology for sustainable plant growth acceleration?
3. Results
4. Discussion
5. Conclusions
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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No. | Title | Author | Journal | Year |
---|---|---|---|---|
1 | Ultraviolet Radiation Management in Greenhouse to Improve Red Lettuce Quality and Yield | Ioannis Lycoskoufis, Angeliki Kavga Georgios Koubouris and DimitriosKaramousantas | Agriculture (MDPI) | 2022 |
2 | Smart Urban Farming Application: UV Light in Hydroponic Installations | Herry Saputra1, Irfan Dwiguna Sumitra, Dedeng Hirawan, Rudhi Lesmana, Eddy Soeryanto Soegoto | Journal of Engineering Science and Technology | 2023 |
No. | RQ1 | RQ2 | RQ3 |
---|---|---|---|
1. | The application of UV-A light for 16 h per day in an indoor hydroponic system has been shown to accelerate plant growth up to 30–50% faster than usual methods. This is because UV light can replace sunlight in the process of photosynthesis, which greatly supports plant development. In addition, UV rays also maintain the cleanliness of the water without affecting its nutritional content, so that the hydroponic system remains optimal. Plants such as lettuce, kale, and mustard greens grow better with wider leaves, taller stems, and fresher colors. Overall, UV light not only accelerates plant growth but also improves the visual and structural quality of the crop. | The utilization of IoT technologies, such as the Raspberry Pi in hydroponic systems, allows for real-time monitoring of temperature, humidity, pH, and nutrient levels. This makes it easy for farmers to access data through desktops or smartphones so that they can easily adjust environmental conditions as needed. Adjusting the intensity of UV rays can be performed with high precision, avoiding the risk of overexposure that could damage the plant. With IoT, environmental management grows more efficiently, and plants can grow more optimally. | Some of the challenges faced in the application of IoT-based UV technology are the stability of environmental parameters, the spread of diseases through nutrient solutions, and high initial costs. To overcome these challenges, it is recommended the use of energy-efficient LED UV lights with safe wavelengths, as well as an automatic control system that can adjust the intensity of UV irradiation according to the growth phase of the plant. In addition, the use of a closed water circulation design also helps to minimize waste and increase efficiency. With the support of IoT technology, these systems can provide in-depth predictions and analyses of growth disturbances, making them more adaptive and supporting sustainable agriculture. |
2. | This study shows that reducing UV exposure in greenhouses with UV-block filters can increase the harvest weight of red lettuce plants by up to 42%. However, this reduction leads to a decrease in the quality of nutrients, such as phenols, flavonoids, and red leaf color. In contrast, plants exposed to UVA rays in greenhouses with UV open systems showed higher visual quality and nutrient content despite slightly lower crop weights. This confirms that UV light is important for increasing the biosynthesis of antioxidant compounds, although it can limit the growth of plant biomass. Therefore, it is important to regulate UV exposure appropriately to optimize the quality and quantity of agricultural produce. | Although the journal does not explicitly address the use of IoT, the emphasis on the importance of precise control of UV light doses remains in the spotlight. For example, the application of UV-A of 425 kJ/m2/day during the pre-harvest phase has been successful in increasing the antioxidant content and color of red lettuce leaves. When applied with IoT technology, UV intensity regulation can be performed automatically using environmental data-driven sensors and actuators, allowing for more precise control in improving crop quality and supporting precision farming. | The main challenge in the application of IoT-based UV technology is the potential for crop damage due to overexposure to UV rays and difficulties in maintaining the consistency of irradiation in changing weather conditions. The manual system cannot schedule irradiation accurately according to the needs of the plants. The proposed solutions include the use of safer and more efficient LED UV lights, as well as the implementation of sensor-based automated systems that can control UV intensity according to the plant’s growth phase. In this way, irradiation that is limited to a specific phase, such as pre-harvest can avoid stress on the crops, while the use of IoT opens up the potential for more environmentally friendly and sustainable agriculture. |
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© 2025 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
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Riyan; Kurniawan, I.T.; Fauzan, M.I.; Hendrawati, T.D. The Effect of UV Light in Accelerating IoT-Based Hydroponic Plant Growth. Eng. Proc. 2025, 107, 29. https://doi.org/10.3390/engproc2025107029
Riyan, Kurniawan IT, Fauzan MI, Hendrawati TD. The Effect of UV Light in Accelerating IoT-Based Hydroponic Plant Growth. Engineering Proceedings. 2025; 107(1):29. https://doi.org/10.3390/engproc2025107029
Chicago/Turabian StyleRiyan, Isep Teddy Kurniawan, Muhammad Irsyad Fauzan, and Trisiani Dewi Hendrawati. 2025. "The Effect of UV Light in Accelerating IoT-Based Hydroponic Plant Growth" Engineering Proceedings 107, no. 1: 29. https://doi.org/10.3390/engproc2025107029
APA StyleRiyan, Kurniawan, I. T., Fauzan, M. I., & Hendrawati, T. D. (2025). The Effect of UV Light in Accelerating IoT-Based Hydroponic Plant Growth. Engineering Proceedings, 107(1), 29. https://doi.org/10.3390/engproc2025107029