Key Laboratory of State Ethnic Affairs Commission, College of Chemical Engineering, Northwest Minzu University, Northwest Xincun 1, Lanzhou 730030, P. R. China.
Center of Experiment, Northwest Minzu University, Lanzhou 730030, P. R. China.
ACS Appl Mater Interfaces. 2021 Nov 17;13(45):53586-53598. doi: 10.1021/acsami.1c15380. Epub 2021 Nov 5.
Highly efficient elimination of petroleum pollution is of great importance for addressing environmental issues and social sustainability. In this study, we demonstrate a novel strategy for efficient elimination of petroleum pollution by selective adsorption of it by an ultralight hydrophobic/lipophilic microorganism-loaded biomass porous foam (BTS-MSFT4@MTMS) followed by a green degradation of adsorbates under mild conditions. The porous structure of biomass porous foam (MSFT) could provide plenty of room for immobilization of (BTS), while a simple surface modification of the MSFT load with a BTS strain (BTS-MSFT4) by methyltrimethoxysilane (MTMS) could change its wettability from hydrophilic to lipophilic, which makes selective adsorption of hydophobic petroleum pollution from water for biodegradation possible. As expected, using a petroleum -hexadecane solution with a concentration of 3% as a model oily wastewater, the as-prepared BTS-MSFT4@MTMS possesses both a superior selective adsorption of ca. 99% and high degradation activity with a high degradation rate of up to 86.65% within 8 days under the conditions of 37 °C, 120 r min, and pH = 7, while the degradation rates for the BTS-MSFT4 and the free BTS strain were measured to be only 81.62 and 65.65%, respectively, under the same conditions. In addition, the results obtained from the study on environment tolerance show that the BTS-MSFT4@MTMS exhibits a strong tolerance under different conditions with various pHs, temperatures, and initial concentrations. Compared with the existing methods for removal of petroleum pollution by direct adsorption of petroleum pollution via superoleophilic porous materials or applying free microorganisms for biodegradation only, which suffers the drawbacks of low selectivity or poor efficiency, our method has great advantages of cost-effectiveness, scalable fabrication, and high efficiency without secondary pollution. Moreover, such a two-in-one strategy by integration of both selective adsorption and biodegradation into biodegradable BTS-MSFT4@MTMS may particularly have great potential for practical application in environmental remediation.
高效消除石油污染对于解决环境问题和社会可持续发展至关重要。在本研究中,我们展示了一种通过超轻疏水亲油微生物负载生物质多孔泡沫(BTS-MSFT4@MTMS)选择性吸附石油污染,并在温和条件下绿色降解吸附物的高效消除石油污染的新策略。生物质多孔泡沫(MSFT)的多孔结构可以为(BTS)的固定提供大量空间,而通过甲基三甲氧基硅烷(MTMS)对 MSFT 负载物进行简单的表面改性,可以将其润湿性从亲水变为亲油,从而可以实现从水中生物降解疏水性石油污染的选择性吸附。不出所料,使用浓度为 3%的石油-十六烷溶液作为模型含油废水,所制备的 BTS-MSFT4@MTMS 具有优越的选择性吸附能力,约为 99%,在 37°C、120 r min 和 pH = 7 的条件下,8 天内的降解活性高达 86.65%,而在相同条件下,BTS-MSFT4 和游离 BTS 菌株的降解率分别仅为 81.62%和 65.65%。此外,环境耐受性研究结果表明,BTS-MSFT4@MTMS 在不同条件下具有很强的耐受性,具有不同的 pH 值、温度和初始浓度。与通过超亲油多孔材料直接吸附石油污染或仅应用游离微生物进行生物降解来去除石油污染的现有方法相比,该方法具有成本效益高、可规模化制造和高效无二次污染的优势。此外,将选择性吸附和生物降解集成到可生物降解的 BTS-MSFT4@MTMS 中这种二合一策略可能特别具有在环境修复中实际应用的巨大潜力。