氮硫共掺杂生物炭的制备及其对Ni2+和Co2+的吸附
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安徽工业大学 化学与化工学院

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TQ424

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安徽省博士后科研项目(2021B547);安徽省教育厅自然科学研究项目(KJ2021A0399)


Preparation of N, S-Co doped biochar and its adsorption performance for Ni2+ and Co2+
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School of Chemistry and Chemical Engineering,Anhui University of Technology,Ma''anshan

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    摘要:

    为解决锂离子电池废料中Ni2+和Co2+污染问题,以芦荟皮为原料,通过加入(NH4)2SO4为氮源和硫源,首先采用水热法制备炭前驱体,然后将其以不同的终温热解制备出N, S共掺杂生物炭(NSBCx)。使用SEM、N2吸附-脱附、XPS、和ZETA电位仪等方法进行表征,研究其对废液中Ni2+、Co2+的吸附能力。结果表明:NSBCx表面暴露出复杂的层片状堆积多孔结构,其中,当活化温度为800 ℃制得的NSBC800具有分级多孔结构,非微孔比例为46%,微孔体积为0.07 cm3/g,比表面积为149 m2/g。NSBC800表面具有大量的氧元素(29.94%)、氮元素(4.79%)、和硫元素(6.21%),对Ni2+和Co2+的吸附量达到了245.10 mg/g和223.71mg/g。NSBC800表面的由氧、氮和硫元素组成的化学官能团浓度在吸附Ni2+和Co2+后发生显著改变,这些官能团可与金属离子反应生成盐或络合物,沉积在生物炭表面。Langmuir模型和拟二级动力学模型能更好地描述NSBCx对Ni2+和Co2+的吸附过程,吸附过程由化学吸附控制,通过多种机制(络合作用,共沉淀、离子交换和静电吸引)同时去除废液中的Ni2+和Co2+。

    Abstract:

    In order to address the issue of Ni2+ and Co2+ pollution in lithium-ion battery waste, a novel biochar adsorption material utilizing aloe peel as the raw material has been developed. The fabrication of this biochar involves the incorporation of (NH4)2SO4 as a nitrogen and sulfur source to prepare a carbon precursor via hydrothermal synthesis, followed by the pyrolysis process at different final temperatures to produce N, S co-doped biochar (NSBCx). The resulting NSBCx material was characterized using techniques such as SEM, N2 adsorption-desorption, XPS, and ZETA potential analysis to evaluate its adsorption capacity for Ni2+ and Co2+ in the waste solution. The results show that the surface of NSBCx is exposed with complex lamellar stacking porous structure, with NSBC800 synthesized at an activation temperature of 800 °C displaying a hierarchical porous structure, a non-microporous proportion of 46%, a micropore volume of 0.07 cm3/g, and a specific surface area of 149 m2/g. Furthermore, NSBC800 surface was found to contain a significant amount of oxygen (29.94%), nitrogen (4.79%), and sulfur (6.21%) elements, with adsorption capacities of 245.10 mg/g for Ni2+ and 223.71 mg/g for Co2+. The chemical functional groups consisting of oxygen, nitrogen, and sulfur elements on the surface of NSBC800 underwent significant changes after adsorbing Ni2+ and Co2+, and these functional groups were able to react with metal ions to form salts or complexes, depositing on the biochar surface. The adsorption process of NSBCx for Ni2+ and Co2+ was found to be better described by the Langmuir model and pseudo-second-order kinetic model, with the adsorption process being chemisorption-controlled. Multiple mechanisms including chelation, co-precipitation, ion exchange, and electrostatic attraction were identified to simultaneously remove Ni2+ and Co2+ from the waste solution.

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余谟鑫,张振,史文旭,孙宇航,张晨,王晓婷,柯清平.氮硫共掺杂生物炭的制备及其对Ni2+和Co2+的吸附[J].精细化工,2025,42(1):

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  • 收稿日期:2023-12-18
  • 最后修改日期:2024-04-02
  • 录用日期:2024-03-12
  • 在线发布日期: 2025-01-17
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