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Updated: Jan 31, 2026

Optimize Flue Gas Settings to Promote Microalgae Growth in Photobioreactors via Computer Simulations
Published on: October 1, 2013
Carbon Sequestration and Pollution Reduction Mechanisms of Chlorella sp. for Simulated Flue Gas
Zheng-Xin Hu1,2, Xian-Biao Lin1,2, Ying-Shun Wang1,2
1Frontiers Science Center for Deep Ocean Multispheres and Earth System, Key Laboratory of Marine Chemistry Theory and Technology, Ministry of Education, and College of Chemistry and Chemical Engineering, Ocean University of China, Qingdao 266100, China.
Abstract:
Nitric oxide (NO), a signaling molecule and free radical, regulates microalgal photosynthesis, yet its potential in enhancing carbon fixation alongside pollutant mitigation remains underexplored. This study investigated the effects of NO (0, 50, 100 ppm) in simulated flue gas (15% CO2) on Chlorella sp., examining intracellular/extracellular NO dynamics, antioxidant response, key enzyme activity (nitrate reductase), and growth-photosynthesis coupling. Under optimized aeration (25 mL min-1, 3 h), 50 ppm of NO optimally elevated intracellular (0.62-1.30 nmol L-1) and extracellular (2.56-3.90 nmol L-1) NO levels, mitigating oxidative stress while stimulating nitrate reductase activity. This concentration maximally promoted cell proliferation (152.7% increase in algal density) and photosynthetic quantum yield (9.7% higher Fv/Fm). Consequently, the CO2 removal rate increased by approximately 43%, coupled with a NO removal efficiency of 33.1%. These findings suggest that, under controlled experimental conditions that exclude SO2 and other components of real flue gas, moderate supplementation of NO can enhance microalgal carbon fixation and reduce nitrogen oxide emissions by improving photosynthetic efficiency and biomass accumulation. This presents a promising strategy for integrated flue gas bioremediation.
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