Sustainable in Energy Science and Technology
Vol. 1 No. 2 (2026): Sustainable in Energy Science and Technology

Ultrasound-Assisted Lipid Extraction of Chlorella sp. for Biodiesel Production: Optimization Study

Yheni Mulyaningsih (Department of Mechanical Engineering, Faculty of Engineering and Technology, Sampoerna University)
Aditya Harjon Bahar (Department of Mechanical Engineering, Faculty of Engineering and Technology, Sampoerna University)
Fazril Ideris (Institute of Sustainable Energy, Universiti Tenaga Nasional)
Rico Aditia Prahmana (Study Program of Mechanical Engineering, Faculty of Industrial Technology, Institut Teknologi Sumatera)



Article Info

Publish Date
01 Feb 2026

Abstract

Microalgae are a promising third-generation biofuel feedstock due to their high lipid and carbohydrate content. In this study, Chlorella pyrenoidosa biomass was subjected to alkaline hydrolysis to release fermentable substrates, and the process was optimized using a Box–Behnken response surface methodology. The key parameters – microalgal concentration, NaOH concentration, temperature, and hydrolysis time – were varied to maximize reducing sugar yield. The experimental data were fitted to a statistical model (R²>0.99), which identified significant positive effects of higher biomass loading and longer hydrolysis time on sugar release. Under the optimal conditions, the model predicts a maximum sugar concentration (approximately 0.47–0.50 g/L) from the hydrolysate. These results demonstrate the feasibility of converting Chlorella biomass into biofuel precursors. The findings are discussed in relation to biodiesel production strategies: for example, ultrasound-assisted extraction methods have achieved ~18.8% lipid yield from Chlorella under optimized conditions. Future work should integrate ultrasound pretreatment and lipid recovery (e.g. direct transesterification) to fully exploit microalgal biofuel potential.

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Journal Info

Abbrev

SiEST

Publisher

Subject

Chemical Engineering, Chemistry & Bioengineering Chemistry Energy Engineering Industrial & Manufacturing Engineering Materials Science & Nanotechnology Mechanical Engineering Physics

Description

Sustainable in Energy and Science Technology (SiEST) aims to serve as a multidisciplinary platform for the dissemination of cutting-edge research, innovation, and advancements in the fields of sustainable energy, environmental science, and technological artificial intelligent development. The ...