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碳纳米管对绿藻的影响是由于遮蔽和聚集引起的吗?

Are carbon nanotube effects on green algae caused by shading and agglomeration?

机构信息

Empa-Swiss Federal Laboratories for Materials Science and Technology , CH-9014 St. Gallen, Switzerland.

出版信息

Environ Sci Technol. 2011 Jul 15;45(14):6136-44. doi: 10.1021/es200506b. Epub 2011 Jun 27.

Abstract

Due to growing production, carbon nanotubes (CNT) may soon be found in a broad range of products and thus in the environment. In this work, an algal growth test was developed to determine effects of pristine and oxidized CNT on the green algae Chlorella vulgaris and Pseudokirchneriella subcapitata. CNT suspensions were prepared in algal test medium and characterized taking into account the suspension age, the reduced light transmittance of nanoparticle suspensions defined as shading of CNT and quantified by UV/vis spectroscopy, and the agglomeration of the CNT and of the algal cells. Growth inhibition and photosynthetic activity were investigated as end points. Growth of C. vulgaris was inhibited with effect concentrations of 50% (EC(50)) values of 1.8 mg CNT/L and of 24 mg CNT/L in well dispersed and in agglomerated suspensions, respectively, and 20 mg CNT/L and 36 mg CNT/L for P. subcapitata, respectively. However, the photosynthetic activity was not affected. Growth inhibition was highly correlated with the shading of CNT and the agglomeration of algal cells. This suggests that the reduced algal growth might be caused mainly by indirect effects, i.e. by reduced availability of light and different growth conditions caused by the locally elevated algal concentration inside of CNT agglomerates.

摘要

由于产量的增加,碳纳米管(CNT)可能很快会出现在各种产品中,从而进入环境。在这项工作中,开发了一种藻类生长测试方法,以确定原始和氧化的 CNT 对绿藻小球藻和假鱼腥藻的影响。将 CNT 悬浮液在藻类测试培养基中制备,并考虑悬浮液的年龄、定义为 CNT 遮光的纳米颗粒悬浮液的光透过率降低以及 CNT 和藻类细胞的团聚来进行表征。将生长抑制和光合作用活性作为终点进行研究。C. vulgaris 的生长受到抑制,在分散良好和团聚的悬浮液中,EC(50)值分别为 50%的 CNT 浓度为 1.8mg/L 和 24mg/L,而 P. subcapitata 的 EC(50)值分别为 20mg/L 和 36mg/L。然而,光合作用活性没有受到影响。生长抑制与 CNT 的遮光和藻类细胞的团聚高度相关。这表明,藻类生长的减少可能主要是由间接影响引起的,即由于 CNT 团聚体内局部藻类浓度升高而导致的光可用性降低和不同的生长条件。

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