R. Brito-Pereira, C. Ribeiro, A. García Díez, V.F. Cardoso, Catherine Klapperich, S. Lanceros-Mendez, P. Martins
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引用次数: 0
Abstract
Anthropogenic magnetite (AM) nanoparticles have been identified in the human brain and circulatory system, potentially linked to neurodegenerative and cardiovascular diseases. Specifically, AM and other magnetic nanocontaminants from industrial emissions and brake wear are hazardous components of particulate matter. Such contamination enriches urban soils with magnetite and other magnetic nanocontaminants, which can be absorbed by plants like rice and consequently enter the human body indirectly. Developing accurate and robust AM-sensing platforms is crucial, especially in areas where magnetic contamination threatens ecosystems and human health. Innovative materials, such as magnetoactive smart materials, are essential for creating sensors with specific, wireless, and adjustable magnetic properties for efficient detection and monitoring of soil contamination. This study presents an origami-based multifunctional sensing platform for sustainable detection of magnetic environmental contamination. Utilizing paper as its substrate for low-cost AM sensing, the device incorporates two wax/NdFeB magnets, four hydrophilic channels, and a hydrophilic analysis area, enclosed by hydrophobic wax. Through comprehensive analysis techniques including energy-dispersive X-ray spectroscopy, vibrating sample magnetometry, infrared spectroscopy, and photographic color changes, the device exhibited a detection limit below 156 μg. The platform's versatility, affordability, sustainability, and capacity for multi-analysis indicate promising prospects for developing economically equitable, user-friendly, mechanically robust, and flexible magnetic contamination sensing devices. These devices eliminate the need for complex machinery while delivering rapid, accurate, and precise results tailored to diverse environmental needs, thus promoting sustainable and safe societies.
在人类大脑和循环系统中发现了人为磁铁矿(AM)纳米粒子,可能与神经退行性疾病和心血管疾病有关。具体来说,工业排放和制动器磨损产生的 AM 和其他磁性纳米污染物是微粒物质的有害成分。这种污染使城市土壤中富含磁铁矿和其他磁性纳米污染物,可被水稻等植物吸收,从而间接进入人体。开发精确、强大的 AM 传感平台至关重要,尤其是在磁污染威胁生态系统和人类健康的地区。创新材料,如磁活性智能材料,对于创建具有特定、无线和可调磁性能的传感器以有效检测和监测土壤污染至关重要。本研究介绍了一种基于折纸的多功能传感平台,用于可持续地检测磁性环境污染。该装置利用纸张作为低成本 AM 传感的基底,包含两个蜡/钕铁硼磁体、四个亲水通道和一个亲水分析区,并由疏水性蜡封闭。通过综合分析技术,包括能量色散 X 射线光谱法、振动样品磁力测定法、红外光谱法和照相颜色变化法,该装置的检测限低于 156 微克。该平台的多功能性、经济性、可持续性和多重分析能力,为开发经济公平、用户友好、机械坚固和灵活的磁污染传感装置带来了广阔的前景。这些装置无需复杂的机械设备,可根据不同的环境需求提供快速、准确和精确的结果,从而促进社会的可持续发展和安全。
期刊介绍:
Journal Name: Applied Materials Today
Focus:
Multi-disciplinary, rapid-publication journal
Focused on cutting-edge applications of novel materials
Overview:
New materials discoveries have led to exciting fundamental breakthroughs.
Materials research is now moving towards the translation of these scientific properties and principles.