Islamic University Journal of Applied Sciences

Smart Insect-Based Bio-Waste Management for Desert Ecosystems: A Review and Integrated Framework

Norhan Shoghy , Tamer Ismail and Reda Ibrahim  

Keywords: Black soldier fly; Insect-based bioconversion; Bio-waste valorisation; Smart waste management; Artificial intelligence; Desert ecosystems.

Major: Science

Sub Major: Entomology , Zoology and Botany.

https://doi.org/10.63070/jesc.2026.036; Received 30 April 2026; Revised 03 June 2026; Accepted 10 June 2026; Available online 15 July 2026.
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Abstract

Desert ecosystems face major bio-waste management challenges due to high temperatures, water scarcity, and limited microbial activity, which reduce the efficiency of conventional treatment methods. In arid regions, bio-waste represents a large proportion of municipal solid waste, while landfilling and composting remain environmentally constrained. Insect-based bioconversion, particularly using Hermetia illucens larvae, has emerged as a promising alternative capable of reducing organic waste by 65–80% within 7–14 days while producing protein-rich biomass and nutrient-rich fertilizer. This review summarizes recent advances in insect-mediated bio-waste valorisation and highlights the integration of artificial intelligence (AI), Internet of Things (IoT), and automation for real-time monitoring and process optimization. A conceptual smart bio-waste management framework for arid environments is proposed, emphasizing climate adaptability, resource efficiency, and scalability. The proposed system offers rapid processing, lower greenhouse gas emissions, and minimal water requirements, supporting sustainable waste management in desert ecosystems.

References

[1] A. van Huis et al., “Edible insects: future prospects for food and feed security,” FAO Forestry Paper 171, Food and Agriculture Organization, Rome, 2013.

 

[2] S. Diener, C. Zurbrügg, and K. Tockner, “Conversion of organic material by black soldier fly larvae: establishing optimal feeding rates,” Waste Management & Research, vol. 27, no. 6, pp. 603–610, 2009.

 

[3] M. Gold et al., “Decomposition of biowaste macronutrients, microbes, and chemicals in black soldier fly larval treatment: A review,” Waste Management, vol. 82, pp. 302–318, 2018.

 

[4] E. M. Makkar et al., “State-of-the-art on use of insects as animal feed,” Animal Feed Science and Technology, vol. 197, pp. 1–33, 2014.

 

[5] A. van Huis, “Insects as food and feed, a new emerging agricultural sector,” Journal of Insects as Food and Feed, vol. 6, no. 1, pp. 27–44, 2020.

 

[6] M. A. Salomone et al., “Environmental impact of food waste management systems: A review,” Journal of Cleaner Production, vol. 289, 125–142, 2021.

 

[7] J. K. Tomberlin et al., “Black soldier fly bioconversion of organic waste,” Annual Review of Entomology, vol. 65, pp. 141–159, 2020.

 

[8] C. Zurbrügg et al., “Challenges and opportunities of insect-based organic waste management,” Waste Management, vol. 102, pp. 201–210, 2020.

 

[9] S. Barrag?n-Fonseca et al., “Insects for organic waste bioconversion: global perspectives,” Waste Management, vol. 102, pp. 1–12, 2020.

 

[10] D. Oonincx et al., “An exploration on greenhouse gas and ammonia production by insect species suitable for animal or human consumption,” PLoS ONE, vol. 5, no. 12, e14445, 2010.

 

[11] M. Banks et al., “Operational performance of insect-based waste systems,” Journal of Cleaner Production, vol. 330, 129–140, 2022.

 

[12] S. Lalander et al., “High waste-to-biomass conversion using black soldier fly larvae,” Journal of Cleaner Production, vol. 137, pp. 117–125, 2016.

 

[13] J. Wolfert et al., “Big data in smart farming: a review,” Agricultural Systems, vol. 153, pp. 69–80, 2017.

 

[14] S. Kamilaris and F. X. Prenafeta-Bold?, “Deep learning in agriculture: A survey,” Computers and Electronics in Agriculture, vol. 147, pp. 70–90, 2018.

 

[15] L. Li et al., “Applications of artificial intelligence in agriculture,” Sensors, vol. 20, no. 10, 2020.

 

[16] M. Zhang et al., “IoT-based smart agriculture systems,” IEEE Access, vol. 8, pp. 110–123, 2020.

 

[17] Ellen MacArthur Foundation, “Towards the circular economy,” 2019.

 

[18] FAO, “The future of food and agriculture: Trends and challenges,” 2022.

 

[19] A. Sheppard et al., “Sustainable waste-to-protein systems,” Waste Management, vol. 120, pp. 10–20, 2021.

 

[20] M. Gold et al., “Scaling insect-based biowaste treatment,” Waste Management, vol. 118, pp. 377–388, 2020.

 

[21] C. Zurbrügg et al., “Black soldier fly applications in developing countries,” Sustainability, vol. 14, 2022.

 

[22] J. van Huis, “Insects as sustainable feed systems,” Annual Review of Entomology, vol. 66, pp. 1–18, 2021.

 

[23] Diener, S., Zurbrügg, C., and Tockner, K. (2015). Bioaccumulation of heavy metals in the black soldier fly, Hermetia illucens, and effects on its life cycle.
Journal of Insects as Food and Feed, 1(4), 261–270.


[24] Van der Fels-Klerx, H. J., Camenzuli, L., van der Lee, M. K., and Oonincx, D. G. A. B. (2016). Uptake of cadmium, lead and arsenic by Tenebrio molitor and Hermetia illucens from contaminated substrates. PLoS ONE, 11(11), e0166186