Optimizing surface properties and particle morphology for metal ion adsorption: precise tuning via Pickering emulsion polymerization.

IF 4.6 3区 材料科学 Q2 CHEMISTRY, MULTIDISCIPLINARY
Andrei Honciuc, Oana-Iuliana Negru, Mirela Honciuc
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Abstract

Tuning the chemistry and morphology of polymer microparticle adsorbents for metal ion adsorption is a complex synthetic challenge. Recently, Pickering Emulsion Polymerization Technology (PEmPTech) has emerged as a straightforward and effective method, presenting a compelling alternative to traditional synthesis techniques. In this study, we explore the versatility of PEmPTech by fine tuning of the composition and morphology of the polymer microspheres to maximize their adsorption capacity for metal ions. By systematically varying the amounts of crosslinker, monomer and porogen, we generated several homologous series of microsphere adsorbents and evaluated their Cu(ii) ion removal efficiency from aqueous solutions. The data reveal a clear structure-activity relationship, highlighting the influence of crosslinker and porogen levels on the structure and morphology of the polymer microspheres and consequently on their metal ion adsorption capacity. The adsorption performance was found to decrease with increasing degree of cross-linking and to improve with higher porosity induced by the porogen. Influence of other factors on the adsorption capacity of the microparticles, such as the nature of the crosslinker, size of the microparticles, water contact angle is also discussed. This study advances our understanding of the design parameters critical for developing effective polymer microsphere adsorbents via PEmPTech as a sustainable method for producing high-performance adsorbents in a completely aqueous and surfactant-free environment.

优化金属离子吸附的表面性能和颗粒形态:通过皮克林乳液聚合进行精确调整。
调整聚合物微粒吸附剂的化学和形态以吸附金属离子是一项复杂的合成挑战。最近,皮克林乳液聚合技术(PEmPTech)作为一种简单有效的方法出现,为传统的合成技术提供了令人信服的替代方案。在这项研究中,我们通过微调聚合物微球的组成和形态来探索PEmPTech的多功能性,以最大限度地提高其对金属离子的吸附能力。通过系统地改变交联剂、单体和成孔剂的数量,我们生成了几个同源系列的微球吸附剂,并评估了它们对水溶液中Cu(ii)离子的去除效率。这些数据揭示了清晰的构效关系,突出了交联剂和孔隙素水平对聚合物微球结构和形态的影响,从而影响了它们对金属离子的吸附能力。吸附性能随交联度的增加而降低,随孔隙率的增加而提高。还讨论了交联剂的性质、微颗粒的尺寸、水接触角等因素对微颗粒吸附能力的影响。这项研究提高了我们对设计参数的理解,这些参数对于通过PEmPTech开发有效的聚合物微球吸附剂至关重要,PEmPTech是一种可持续的方法,可以在完全含水和无表面活性剂的环境中生产高性能吸附剂。
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来源期刊
Nanoscale Advances
Nanoscale Advances Multiple-
CiteScore
8.00
自引率
2.10%
发文量
461
审稿时长
9 weeks
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