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Kinetics, Affinity, Thermodynamics, and Selectivity of Phosphate Removal Using Immobilized Phosphate-Binding Proteins

机译:使用固定化磷酸盐结合蛋白,动力学,亲和力,热力学和磷酸盐去除选择性

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摘要

A phosphate (P_i)-selective adsorption system featuring immobilized P_i-binding proteins (PBP) has recently attracted attention for ultralow P_i removal followed by recovery. This study investigated the adsorption kinetics, affinity, thermodynamics, and selectivity, as well as the effect of pH and temperature on P_i adsorption using immobilized PBP (PBP resin). Immobilizing PBP did not affect its P_i affinity. Kinetic studies at 22 °C and pH 7.1 showed that the PBP resin achieved 95% of its equilibrium capacity within 0.64 ± 0.2 min. The estimated Langmuir affinity constant (K_L) was 21 ± 5 μM~(-1) P_i (220 ± 52 L/mg-P_i), which is higher than P_i adsorbents recently reported in literature. The ideal operating ranges for high-affinity P_i adsorption using PBP resin were pH 4.5 to 9 and temperature 14 to 37 °C. The P_i-PBP resin adsorption process was not affected by the presence of common anions (Cl~-, Br~-, NO_2~-, NO_3~-, SO_4~(2-), and HCO_3~-). Adsorption using the P_i-PBP resin was exothermic (ΔH = -6.3 ± 1.3 kJ/mol) and spontaneous (ΔG = -39.7 ± 0.1 to -43.2 ± 0.2 kJ/mol) between 14 and 43 °C. These results indicate that PBP resin's P_i adsorption rate and affinity surpass those of existing adsorbents. Future work to increase the PBP resin's adsorption capacity is important to its application as a viable P_i adsorbent.
机译:具有固定的P_I结合蛋白(PBP)具有固定的磷酸盐(P_I)的选择吸附系统最近引起了超级P_I去除后的注意力。本研究研究了吸附动力学,亲和力,热力学和选择性,以及使用固定的PBP(PBP树脂)对P_I吸附的pH和温度的影响。固定PBP不影响其P_I亲和力。在22℃和pH7.1时的动力学研究表明,PBP树脂在0.64±0.2分钟内实现了95%的平衡能力。估计的Langmuir亲和常数(K_1)为21±5μm〜(-1)P_I(220±52L / mg-p_i),其高于最近在文献中报道的P_I吸附剂。使用PBP树脂的高亲和力P_I吸附的理想操作范围是pH 4.5至9,温度为14至37℃。 P_I-PBP树脂吸附过程不受常见阴离子的存在影响(CL〜 - ,BR〜 - ,NO_2〜 - ,NO_3〜 - ,SO_4〜(2-)和HCO_3〜 - )。使用P_I-PBP树脂的吸附是放热(ΔH= -6.3±1.3 kJ / mol)和自发(ΔG= -39.7±0.1至-43.2±0.2kJ / mol),在14至43℃之间。这些结果表明,PBP树脂的P_I吸附速率和亲和力超越了现有的吸附剂。未来的工作增加PBP树脂的吸附能力对于其作为可行的P_I吸附剂的应用非常重要。

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  • 来源
    《Environmental Science & Technology》 |2020年第17期|10885-10894|共10页
  • 作者单位

    1637 W. Wisconsin Ave. Department of Civil Construction and Environmental Engineering Marquette University Milwaukee Wisconsin S3233 United States;

    1637 W. Wisconsin Ave. Department of Civil Construction and Environmental Engineering Marquette University Milwaukee Wisconsin 53233 United States;

    1637 W. Wisconsin Ave. Department of Civil Construction and Environmental Engineering Marquette University Milwaukee Wisconsin 53233 United States;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
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  • 正文语种 eng
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