研究榴莲皮基活性炭的合成参数及纳米银催化剂对其去除亚甲基蓝的可回收性的影响。

0 MATERIALS SCIENCE, MULTIDISCIPLINARY Discover nano Pub Date : 2024-02-22 DOI:10.1186/s11671-024-03974-1
Dzilal Amir, Ricca Rahman Nasaruddin, Maryam Yousefi, Mohd Sufri Mastuli, Sarina Sulaiman, Md Zahangir Alam, Nurul Sakinah Engliman
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引用次数: 0

摘要

活性炭(AC)是消除废水中有毒有机污染物(尤其是染料)最常见、最经济可行的吸附剂。活性炭之所以被广泛采用,是因为其生产工艺简单、价格低廉,可以使用榴莲皮等低成本农业废料。将榴莲皮转化为 AC 是一种很有前景的固体废物管理解决方案。然而,榴莲皮固有的缺点,如非选择性、相对较短的使用寿命以及费力的更换和回收过程,削弱了榴莲皮作为吸附剂的整体功效。为了应对这些挑战,固定金属纳米催化剂(如银纳米粒子 (AgNPs))是新兴的解决方案之一。AgNPs 可以催化吸附的染料转化为无害和更简单的分子,从而促进 AC 吸附位点的再生。然而,在 AC 表面固定 AgNPs 是一项挑战,因为 AC 的孔径很难控制,而且纳米材料很容易从 AC 表面渗出。因此,在本研究中,我们用榴莲皮(DS)合成了 AC,并在 AC-DS 表面固定了 AgNPs。然后,我们利用亚甲基蓝(MB)去除来研究 AC-DS 的吸附能力和可回收性。在合成 AC-DS 的过程中,首先确定了反应温度、活化剂和酸洗对其吸附去除溶液中甲基溴能力的影响。结果发现,在 400 ℃、KOH 活性剂和酸洗(50% 的 HNO3)的条件下,AC-DS 对甲基溴的去除率最高(91.49 ± 2.86%)。然后,三次可回收性实验的总体结果表明,与单独的 AC-DS 相比,固定了 AgNPs 的 AC-DS 在多次循环(最多 6 次循环)后表现出更高的甲基溴去除率,这证明了 AgNPs 对 AC-DS 可回收性的益处。我们还发现,与 AgNPs/PVP@AC-DS 相比,AgNPs/柠檬酸盐@AC-DS 表现出更好的吸附能力和可回收性,这表明本研究中稳定剂类型的影响很大。这项研究还表明,AC-DS 和柠檬酸盐分子经酸洗后含有更多的含氧官能团(即羧基和羟基官能团),这对 AC-DS 和 AgNPs/Citrate@AC-DS 去除甲基溴的性能影响更大,而对它们的 BET 表面积和孔结构的影响则较小。本研究的发现有可能促进并指导人们利用 AgNPs 等纳米材料的优势来增强 AC 在环境应用中的性能。
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Investigating the synthesis parameters of durian skin-based activated carbon and the effects of silver nanocatalysts on its recyclability in methylene blue removal.

Activated carbon (AC) is the most common and economically viable adsorbent for eliminating toxic organic pollutants, particularly dyes, from wastewater. Its widespread adoption is due to the simplicity and affordable production of AC, wherein low-cost agricultural wastes, such as durian skin can be used. Converting durian skin into AC presents a promising solution for its solid waste management. However, inherent drawbacks such as its non-selectivity, relatively short lifespan and laborious replacement and recovery processes diminish the overall efficacy of AC as an adsorbent. To address these challenges, the immobilisation of metal nanocatalysts such as silver nanoparticles (AgNPs) is one of the emerging solutions. AgNPs can facilitate the regeneration of the adsorption sites of AC by catalysing the conversion of the adsorbed dyes into harmless and simpler molecules. Nevertheless, the immobilisation of AgNPs on AC surface can be challenging as the pore size formation of AC is hard to control and the nanomaterials can easily leach out from the AC surface. Hence, in this study, we synthesised AC from durian skin (DS) and immobilised AgNPs on the AC-DS surface. Then, we used methylene blue (MB) removal for studying the adsorption capability and recyclability of the AC-DS. In the synthesis of AC-DS, the influences of reaction temperature, activating agent, and acid-washing to its capability in adsorptive removal of  MB in solution were first determined. It was found that 400 °C, KOH activating agent, and the presence of acid-washing (50% of HNO3) resulted in AC-DS with the highest percentage of MB removal (91.49 ± 2.86%). Then, the overall results from three recyclability experiments demonstrate that AC-DS with immobilised AgNPs exhibited higher MB removal after several cycles (up to 6 cycles) as compared to AC-DS alone, proving the benefit of AgNPs for the recyclability of AC-DS. We also found that AgNPs/Citrate@AC-DS exhibited better adsorption capability and recyclability as compared to AgNPs/PVP@AC-DS indicating significant influences of type of stabilisers in this study. This study also demonstrates that the presence of more oxygen-containing functional groups (i.e., carboxyl and hydroxyl functional groups) after acid-washing on AC-DS and in citrate molecules, has greater influence to the performance of AC-DS and AgNPs/Citrate@AC-DS in the removal of MB as compared to the influences of their BET surface area and pore structure. The findings in this study have the potential to promote and serve as a guideline for harnessing the advantages of nanomaterials, such as AgNPs, to enhance the properties of AC for environmental applications.

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