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用聚辛基噻吩推进多离子传感:3D打印的可植入挤奶器微流体装置。

Advancing Multi-Ion Sensing with Poly-Octylthiophene: 3D-Printed Milker-Implantable Microfluidic Device.

作者信息

Ali Md Azahar, Ataei Kachouei Matin

机构信息

School of Animal Sciences, Virginia Tech, Blacksburg, Virginia, 24061, USA.

Biological Systems Engineering, Virginia Tech, Blacksburg, Virginia, 24061, USA.

出版信息

Adv Sci (Weinh). 2024 Dec;11(47):e2408314. doi: 10.1002/advs.202408314. Epub 2024 Oct 14.

Abstract

On-site rapid multi-ion sensing accelerates early identification of environmental pollution, water quality, and disease biomarkers in both livestock and humans. This study introduces a pocket-sized 3D-printed sensor, manufactured using additive manufacturing, specifically designed for detecting iron (Fe), nitrate (NO ), calcium (Ca), and phosphate (HPO ). A unique feature of this device is its utilization of a universal ion-to-electron transducing layer made from highly redox-active poly-octylthiophene (POT), enabling an all-solid-state electrode tailored to each ion of interest. Manufactured with an extrusion-based 3D printer, the device features a periodic pattern of lateral layers (width = 80 µm), including surface wrinkles. The superhydrophobic nature of the POT prevents the accumulation of nonspecific ions at the interface between the gold and POT layers, ensuring exceptional sensor selectivity. Lithography-free, 3D-printed sensors achieve sensitivity down to 1 ppm of target ions in under a minute due to their 3D-wrinkled surface geometry. Integrated seamlessly with a microfluidic system for sample temperature stabilization, the printed sensor resides within a robust, pocket-sized 3D-printed device. This innovation integrates with milking parlors for real-time calcium detection, addressing diagnostic challenges in on-site livestock health monitoring, and has the capability to monitor water quality, soil nutrients, and human diseases.

摘要

现场快速多离子传感可加速对环境污染、水质以及家畜和人类疾病生物标志物的早期识别。本研究介绍了一种采用增材制造生产的袖珍型3D打印传感器,专门设计用于检测铁(Fe)、硝酸盐(NO)、钙(Ca)和磷酸盐(HPO)。该设备的一个独特之处在于其使用了由高氧化还原活性的聚辛基噻吩(POT)制成的通用离子到电子转换层,从而能够为每种目标离子定制全固态电极。该设备采用基于挤出的3D打印机制造,具有横向层的周期性图案(宽度 = 80 µm),包括表面皱纹。POT的超疏水特性可防止非特异性离子在金层和POT层之间的界面处积累,确保传感器具有出色的选择性。由于其3D皱纹表面几何结构,无光刻3D打印传感器在不到一分钟的时间内就能实现对目标离子低至1 ppm的灵敏度。该打印传感器与用于样品温度稳定的微流体系统无缝集成,位于一个坚固的袖珍型3D打印设备内。这一创新与挤奶厅集成,用于实时钙检测,解决了现场家畜健康监测中的诊断挑战,并且有能力监测水质、土壤养分和人类疾病。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/bab3/11653713/427330365be7/ADVS-11-2408314-g007.jpg

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