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Polyurethane film prepared from ball-milled algal polyol particle and activated carbon filler for NH3–N removal

机译:由球磨藻类多元醇颗粒和活性炭填料制备的聚氨酯膜用于NH 3-N去除

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摘要

This research offers a novel approach of free chemical preparation to obtain algae-based biopolyol through a ball milling method. The algae-based polyurethane (AlgPU) film was obtained from a casting solution made of ball-milled algal polyol particle and methylene diphenyl diisocyanate (MDI). The characteristics of the material had been investigated using Fourier Transform Infrared, Scanning Electron Microscopy – Electron Dispersive Spectroscopy, Differential Scanning Calorimetry, and Tensile Strength Analysis. The surface area was determined by Brunauer–Emmett–Teller (BET) isotherm, meanwhile the total pore volume was by Barrett-Joyner-Halenda (BJH) isotherm, based on the adsorption-desorption of N . The addition of activated carbon contributed in the increase of functional group and surface area, which were important for the NH –N removal. As a result, the adsorption capacity increased greatly after the addition of activated carbon (from 187.84 to 393.43 μg/g). The results also suggested AlgPU as a good matrix for immobilizing activated carbon filler. The adsorption shows a better fit with Langmuir isotherm model, with R = 0.97487 and root-mean-square error (RMSE) = 33.91952, compared to Freundlich isotherm model (R = 0.96477 and RMSE = 44.05388). This means the NH –N adsorption followed the assumption of homogenous and monolayer adsorption, in which the maximum adsorption was found to be 797.95 μg/g. This research suggests the potential of newly developed material for NH –N removal.
机译:本研究提供了一种通过球磨方法获得基于藻类的生物聚合的新型游离化学品方法。从由球磨藻类多元醇颗粒和亚甲基二苯基二异氰酸酯(MDI)制成的浇铸溶液获得藻类的聚氨酯(ALGPU)膜。使用傅里叶变换红外线,扫描电子显微镜 - 电子分散光谱,差示扫描量热法和拉伸强度分析来研究材料的特性。表面积由Brunauer-Emmett-Teller(Bet)等温线确定,同时,基于N的吸附解吸,总孔体积由Barrett-Joyner-Halenda(BJH)等温。添加活性炭在官能团和表面积的增加中有助于,这对NH -N除去很重要。结果,在加入活性炭(187.84至393.43μg/ g)后,吸附能力大大增加。结果还提出了ALGPU作为固定活性炭填料的良好基质。吸附显示与Langmuir等温模型更好,r = 0.97487和根均方误差(RMSE)= 33.91952,相比(R = 0.96477和RMSE = 44.05388)。这意味着NH-N吸附遵循均匀和单层吸附的假设,其中最大吸附是797.95μg/ g。该研究表明NH-N拆除新开发材料的潜力。

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