Wu Hongli, Zhou Jiaying, Zhang Sai, Niu Ping, Li Haoming, Liu Zhongmin, Zhang Ning, Li Chunhui, Wang Liping, Wang Yudong
College of Textile and Light Industry, Inner Mongolia University of Technology, Hohhot 010081, China.
College of Chemistry and Chemical Engineering, Dezhou University, Dezhou 253023, China.
Polymers (Basel). 2024 Apr 8;16(7):1019. doi: 10.3390/polym16071019.
To investigate the relationship between structures and adsorption properties, four different morphologies of chitosan, with hydrogel (CSH), aerogel (CSA), powder (CSP), and electrospinning nanofiber (CSEN) characteristics, were employed as adsorbents for the removal of Acid Red 27. The structures and morphologies of the four chitosan adsorbents were characterized with SEM, XRD, ATR-FTIR, and BET methods. The adsorption behaviors and mechanisms of the four chitosan adsorbents were comparatively studied. All adsorption behaviors exhibited a good fit with the pseudo-second-order kinetic model (R > 0.99) and Langmuir isotherm model (R > 0.99). Comparing the adsorption rates and the maximum adsorption capacities, the order was CSH > CSA > CSP > CSEN. The maximum adsorption capacities of CSH, CSA, CSP, and CSEN were 2732.2 (4.523), 676.7 (1.119), 534.8 (0.885), and 215.5 (0.357) mg/g (mmol/g) at 20 °C, respectively. The crystallinities of CSH, CSA, CSP, and CSEN were calculated as 0.41%, 6.97%, 8.76%, and 39.77%, respectively. The crystallinity of the four chitosan adsorbents was the main factor impacting the adsorption rates and adsorption capacities, compared with the specific surface area. With the decrease in crystallinity, the adsorption rates and capacities of the four chitosan adsorbents increased gradually under the same experimental conditions. CSH with a low crystallinity and large specific surface area resulted in the highest adsorption rate and capacity.
为研究结构与吸附性能之间的关系,采用了具有水凝胶(CSH)、气凝胶(CSA)、粉末(CSP)和静电纺丝纳米纤维(CSEN)特性的四种不同形态的壳聚糖作为吸附剂,用于去除酸性红27。采用扫描电子显微镜(SEM)、X射线衍射(XRD)、衰减全反射傅里叶变换红外光谱(ATR-FTIR)和比表面积分析仪(BET)方法对四种壳聚糖吸附剂的结构和形态进行了表征。对四种壳聚糖吸附剂的吸附行为和机理进行了比较研究。所有吸附行为均与准二级动力学模型(R>0.99)和朗缪尔等温线模型(R>0.99)拟合良好。比较吸附速率和最大吸附容量,顺序为CSH>CSA>CSP>CSEN。在20℃时,CSH、CSA、CSP和CSEN的最大吸附容量分别为2732.2(4.523)、676.7(1.119)、534.8(0.885)和215.5(0.357)mg/g(mmol/g)。CSH、CSA、CSP和CSEN的结晶度分别计算为0.41%、6.97%、8.76%和39.77%。与比表面积相比,四种壳聚糖吸附剂的结晶度是影响吸附速率和吸附容量的主要因素。在相同实验条件下,随着结晶度的降低,四种壳聚糖吸附剂的吸附速率和容量逐渐增加。结晶度低、比表面积大的CSH具有最高的吸附速率和容量。