[1]Mandal S, Mallick N. Microalga Scenedesmus obliquus as a potential source for biodiesel production[J]. Appl Microbiol Biotechnol, 2009, 84(2):281-291. [2]Williams P, Laurens L. Microalgae as biodiesel and biomass feedstocks:review and analysis of the biochemistry and economics[J]. Energy Envion Sci, 2010, 3(5):554-590. [3]Chisti Y. Biodiesel from microalgae[J]. Biotechnol Adv, 2007, 25(3):294-306. [4]Singh J, Gu S. Commercialization potential of microalgae for biofuels production[J]. Renew Sustain Energy Rev, 2010, 14(9):2596-2610. [5]Rodolfi L, Zittelliv C G, Bassi N, et al. Microalgae for oil:strain selection, induction of lipid synthesis and outdoor mass cultivation in a low-cost photobioreactor[J]. Biotechnol Bioeng, 2009, 102(1):100-112. [6]王金娜, 严小军, 周成旭, 等. 产油微藻的筛选及中性脂动态积累过程的检测[J]. 生物物理学报, 2010, 26(6):472-480. [7]李涛, 李爱芬, 桑敏, 等. 富油能源微藻的筛选及产油性能评价[J]. 中国生物工程杂志, 2011, 31(4):98-105. [8]王玉荣, 师文静, 佟明友. 产油微藻的筛选及其产油性能评价的研究[J]. 当代化工, 2015, 44(4):680-683. [9]Prabakaran P, Ranvindran AD. Scenedesmus as a potential source of biodiesel among selected microalgae[J]. Curr Sci, 2012, 102(4):616-620. [10]Pittman JK, Dean AP, Osundeko O. The potential of sustainable algal biofuel production using wastewater resources[J]. Bioresource Technology, 2011, 102(1):17-25. [11]高保燕, 沈丹丹, 何思思, 等. 富油微藻———尖状栅藻生物质生产与奶牛场废水处理相结合的效果研究[J]. 可再生能源, 2014, 32(5):673-679. [12]安晓雯, 张恩栋, 王起华. 固定化栅藻对市政污水中氮、磷营养盐的深度净化[J]. 中南民族大学学报:自然科学版, 2006, 25(4):14-17. [13]洪华嫦, 周海云, 蓝崇钰. 五氯酚对斜生栅藻的毒性效应研究[J]. 环境科学研究, 2003, 16(6):23-28. [14]邱伟建, 陈敏东, 葛顺, 等. 斜生栅藻对草甘膦异丙胺盐的毒性响应[J]. 环境科学与技术, 2013, 36(12):24-28. [15] 曹维维, 王恒, 李湘鸣, 等. 汞对斜生栅藻的急性毒性研究[J]. 上海农业科技, 2010(3):22-23. [16]Richmond A. Handbook of Microalgal Culture:Biotechnology and Applied Phycology[M]. UK, Iowa:Blackwell, publishing, 2004. [17]Azov Y. Effect of pH on inorgannic carbon uptake in algal cultures[J]. Applied and Environmental Microbiology, 1982, 43(6):1300-1306. [18]Chen W, Zhang CW, Song LR, et al. A high throughput Nile red method for quantitative measurement of neutral lipids in microalgae[J]. Journal of Microbiological Methods, 2009, 77(1):41-47. [19]Khozin-Goldberg I, Shrestha P, Cohen Z. Mobilization of arachidonyl moieties from triacylglycerols into chloroplastic lipids following recovery from nitrogen starvation of the microalga Parietochloris incisa[J]. Biochimica et Biophysica Acta, 2005, 1738(1-3):63-71. [20]Solovchenko AE, Khozin-Goldberg. I, Didi-cohen S, et al. Effects of light intensity and nitrogen starvation on growth, total fatty acids and arachidonic acid in the green microalga Parietochloris incisa[J]. J Appl Phycol, 2008, 20(3):245-251. [21]王元丽, 李其雨, 李爱芬, 等. 株真眼点藻的生长及光合生理特性[J]. 生物技术, 2014, 24(2):91-95. [22]展望, 桑敏, 李爱芬, 等. 不同光径对两株土壤绿藻生长及脂类积累的影响[J]. 可再生能源, 2010, 28(3):67-71. [23]Wang H, Gao LL, Chen L, et al. Integration process of biodiesel production from filamentous oleaginous microalgae Tribonema minus[J]. Bioresource Technology, 2013, 142:39-44. [24]Gao YY, Yang MC, Wang CH. Nutrient deprivation enhances lipid content in marine microalgae[J]. Bioresource Technology, 2013, 147:484-491. [25]孙远, 刘文彬, 周铁柱, 等. Fe3+对小球藻的生长及油脂含量的影响[J]. 生物技术通报, 2014(4):181-186. |