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计算识别真菌生物质对活性黑 5 吸附过程中关键生物吸附特性,并进行分析。

Computational identification and analysis of the key biosorbent characteristics for the biosorption process of reactive black 5 onto fungal biomass.

机构信息

College of Life Sciences, Zhejiang University, Hangzhou, People's Republic of China.

出版信息

PLoS One. 2012;7(3):e33551. doi: 10.1371/journal.pone.0033551. Epub 2012 Mar 19.

Abstract

The performances of nine biosorbents derived from dead fungal biomass were investigated for their ability to remove Reactive Black 5 from aqueous solution. The biosorption data for removal of Reactive Black 5 were readily modeled using the Langmuir adsorption isotherm. Kinetic analysis based on both pseudo-second-order and Weber-Morris models indicated intraparticle diffusion was the rate limiting step for biosorption of Reactive Black 5 on to the biosorbents. Sorption capacities of the biosorbents were not correlated with the initial biosorption rates. Sensitivity analysis of the factors affecting biosorption examined by an artificial neural network model showed that pH was the most important parameter, explaining 22%, followed by nitrogen content of biosorbents (16%), initial dye concentration (15%) and carbon content of biosorbents (10%). The biosorption capacities were not proportional to surface areas of the sorbents, but were instead influenced by their chemical element composition. The main functional groups contributing to dye sorption were amine, carboxylic, and alcohol moieties. The data further suggest that differences in carbon and nitrogen contents of biosorbents may be used as a selection index for identifying effective biosorbents from dead fungal biomass.

摘要

研究了九种源自死亡真菌生物质的生物吸附剂去除水溶液中活性黑 5 的性能。使用 Langmuir 吸附等温线可以很好地对去除活性黑 5 的生物吸附数据进行建模。基于伪二阶和 Weber-Morris 模型的动力学分析表明,内扩散是活性黑 5 生物吸附到生物吸附剂上的限速步骤。生物吸附剂的吸附容量与初始生物吸附速率无关。人工神经网络模型对影响生物吸附的因素进行的敏感性分析表明,pH 是最重要的参数,解释了 22%,其次是生物吸附剂的氮含量(16%)、初始染料浓度(15%)和生物吸附剂的碳含量(10%)。吸附容量与吸附剂的表面积不成比例,而是受其化学元素组成的影响。对染料吸附有贡献的主要官能团为胺、羧酸和醇基团。这些数据进一步表明,生物吸附剂的碳和氮含量的差异可作为从死亡真菌生物质中鉴定有效生物吸附剂的选择指数。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f5b1/3307745/2b516d1eedd3/pone.0033551.g001.jpg

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