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Updated: Jul 3, 2026

Cultivation of Green Microalgae in Bubble Column Photobioreactors and an Assay for Neutral Lipids
Published on: January 7, 2019
Comparative study of CO₂ nanobubbles and macrobubbles: Effects on water chemistry, microalgal growth, and carbon
Lili Li1, Jingru Wei2, Yi-Ying Lee3
1John A. Reif, Jr. Department of Civil and Environmental Engineering, New Jersey Institute of Technology, Newark, New Jersey 07102, United States; Institute of Hydrobiology, Chinese Academy of Sciences, Wuhan 430072, China; University of Chinese Academy of Sciences, Beijing 100049, China.
Abstract:
Algal biotechnology presents a cost-effective approach for simultaneous carbon dioxide (CO₂) capture and bioproduct generation. However, conventional gas delivery approaches (e.g., macro and micro-bubbles) suffer from low gas-liquid mass transfer efficiency (KL·a) and CO2 utilization. This study investigated the aqueous properties of CO₂ nanobubbles and impacts on the CO2 mass transfer, utilization, and microalgal growth. Results revealed that direct injection of CO2 nanobubbles in DI water achieved rapid CO2 saturation (1.48 ± 0.08 g·L-1) and nanobubble density (1.5 × 108 particles·mL-1) within 1 minute. By contrast, the circulation mode produced a higher nanobubbles concentration (2.6 × 108 particles·mL-1) after 20 min with a similar dissolved CO2 concentration. Accordingly, the volumetric mass transfer coefficient (KL·a) of CO2 nanobubbles in DI water reached 12.41 ± 3.49 h-1 (circulation mode) and 18.91 ± 7.68 h-1 (direct mode), exceeding that of macrobubbles (10.18 ± 2.38 h-1). Compared to macrobubbles, the use of CO2 nanobubbles in Scenedesmus obliquus cultivation increased biomass by 10.11 ± 0.01% over 14 days and garnered carbon utilization efficiency (CUE) to 27.86 ± 0.63%, supported by the enhanced CO2 mass transfer or carbon transfer efficiency. These findings highlight the potential of nanobubble technology in algal biotechnology applications and global CO2 emission mitigation.
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