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    氨基硫脲功能化活性炭对Pd(II)的高效选择性吸附研究

    Study on the Efficient and Selective Adsorption of Pd(II) by Aminothioureafunctionalized Activated Carbon

    • 摘要: 钯(Pd)以其优异的催化活性与化学稳定性,在航空航天、汽车尾气催化及化工制药等领域应用广泛。针对现有钯催化剂回收过程中选择性低、成本高的难题,本研究采用接枝法制备了一种氨基硫脲功能化活性炭吸附材料,用于高效选择性吸附水溶液中的 Pd(II)。以活性炭为载体,通过酰胺键将氨基硫脲接枝到其表面,成功制得吸附材料(AC-NS)。傅里叶红外光谱(FTIR)与 X射线光电子能谱(XPS)表征结果证实氨基硫脲已成功接枝。吸附实验表明,在最佳 pH = 4 时,AC-NS 对 Pd(II) 的吸附容量提升至原始活性炭的 3 倍;吸附行为符合准二级动力学和 Freundlich 等温模型,理论最大吸附量为 235.65 mg/g,且为自发的吸热过程。在含Pd(II)、Cu(II)、Ni(II)、Co(II)和Zn(II)的混合溶液中,AC-NS对Pd(II)表现出优异的选择性,吸附量远高于其它共存离子。X射线衍射分析(XRD)与XPS分析表明AC-NS吸附Pd(Ⅱ)是通过N、S原子形成配位键,实现其与金属离子混合溶液的分离,本研究为从复杂体系中高效选择性回收钯提供了重要参考。

       

      Abstract: Palladium (Pd) is widely used in aerospace, automotive exhaust catalysis, and chemical and pharmaceutical industries due to its excellent catalytic activity and chemical stability. To address the challenges of low selectivity and high cost in existing recovery processes for palladium catalysts, this study prepared an amino-thiourea-functionalized activated carbon adsorption material via a grafting method for highly efficient and selective adsorption of Pd(II) from aqueous solutions. Using activated carbon as the carrier, amino-thiourea was grafted onto its surface through amide bonds, successfully fabricating the adsorption material (AC-NS). Fourier Transform Infrared Spectroscopy (FTIR) and X-ray Photoelectron Spectroscopy (XPS) characterization results confirmed the successful grafting of amino-thiourea. Adsorption experiments demonstrated that at the optimal pH = 4, the adsorption capacity of AC-NS for Pd(II) was significantly enhanced, reaching three times that of pristine activated carbon. The adsorption behavior followed pseudo-second-order kinetics and the Freundlich isotherm model, with a theoretical maximum adsorption capacity of 235.65 mg/g, and the process was spontaneous and endothermic. In mixed solutions containing Pd(II), Cu(II), Ni(II), Co(II), and Zn(II), AC-NS exhibited excellent selectivity toward Pd(II), with its adsorption capacity far exceeding those of other coexisting ions. X-ray Diffraction Analysis (XRD) and XPS analyses indicated that Pd(II) adsorption on AC-NS occurred through the formation of coordination bonds with N and S atoms, enabling its separation from mixed metal ion solutions. This study provide an important reference for the efficient and selective recovery of palladium from complex systems.

       

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