National Key Laboratory of Biochemical Engineering & Laboratory of Separation Science and Engineering, Institute of Process Engineering, Chinese Academy of Sciences, Beijing 100190, PR China.
Bioresour Technol. 2013 Jun;138:387-90. doi: 10.1016/j.biortech.2013.04.016. Epub 2013 Apr 13.
An efficient magnetic separation technology using Fe(3)O(4) nanoparticles was developed for harvesting marine microalgae Nannochloropsis maritima from culture broth. Recovery capacity of these nanoparticles was affected by microalgal growth phase and reached the peak value when the microalgal growth reached its maximal biomass after 18 days. The recovery efficiency of microalgal cells from the culture medium reached more than 95% at the particle dosage of 120 mg/L within 4 min. Electrostatic attraction at acidic pH and cell aggregation under neutral and alkaline conditions was beneficial for harvesting the algal cells. Higher operation temperature resulted in higher adsorption capacity of these nanoparticles for microalgawl cells. Reuse of the culture medium obtained from magnetic separation gave similar biomass production in comparison with that from centrifugation separation after 5 recycles. Together with these results provide a great potential in high-efficient and economical harvesting of tiny marine microalgae using magnetic separation technology in practice.
开发了一种利用 Fe(3)O(4)纳米粒子的高效磁分离技术,用于从培养液中收获海洋微藻拟南芥。这些纳米粒子的回收能力受微藻生长阶段的影响,当微藻生长 18 天后达到最大生物量时达到峰值。在 120mg/L 的颗粒剂量下,在 4 分钟内,从培养基中回收微藻细胞的效率超过 95%。在酸性 pH 值下的静电吸引和在中性和碱性条件下的细胞聚集有利于收获藻类细胞。较高的操作温度导致这些纳米粒子对微藻细胞的吸附能力更高。与离心分离相比,磁分离获得的培养基在 5 次循环后再次使用,仍可获得相似的生物量。这些结果为在实际中使用磁分离技术高效、经济地收获微小海洋微藻提供了巨大的潜力。