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基于幼虫生物质衍生壳聚糖的可持续柔性湿度传感器的研制

Development of a Sustainable Flexible Humidity Sensor Based on Larvae Biomass-Derived Chitosan.

作者信息

Nettey-Oppong Ezekiel Edward, Muhammad Riaz, Ackah Emmanuel, Yang Hojun, Ali Ahmed, Jeong Hyun-Woo, Kim Seong-Wan, Seok Young-Seek, Choi Seung Ho

机构信息

Department of Biomedical Engineering, Yonsei University, Wonju 26493, Republic of Korea.

Department of Electrical Engineering, Sukkur IBA University, Sukkur 65200, Pakistan.

出版信息

Sensors (Basel). 2025 Jan 20;25(2):575. doi: 10.3390/s25020575.

Abstract

This study presents the fabrication of a sustainable flexible humidity sensor utilizing chitosan derived from mealworm biomass as the primary sensing material. The chitosan-based humidity sensor was fabricated by casting chitosan and polyvinyl alcohol (PVA) films with interdigitated copper electrodes, forming a laminate composite suitable for real-time, resistive-type humidity detection. Comprehensive characterization of the chitosan film was performed using Fourier-transform infrared (FTIR) spectroscopy, contact angle measurements, and tensile testing, which confirmed its chemical structure, wettability, and mechanical stability. The developed sensor exhibited a broad range of measurements from 6% to 97% relative humidity (RH), a high sensitivity of 2.43 kΩ/%RH, and a rapid response time of 18.22 s with a corresponding recovery time of 22.39 s. Moreover, the chitosan-based humidity sensor also demonstrated high selectivity for water vapor when tested against various volatile organic compounds (VOCs). The superior performance of the sensor is attributed to the structural properties of chitosan, particularly its ability to form reversible hydrogen bonds with water molecules. This mechanism was further elucidated through molecular dynamics simulations, revealing that the conductivity in the sensor is modulated by proton mobility, which operates via the Grotthuss mechanism under high-humidity and the packed-acid mechanism under low-humidity conditions. Additionally, the chitosan-based humidity sensor was further seamlessly integrated into an Internet of Things (IoT) framework, enabling wireless humidity monitoring and real-time data visualization on a mobile device. Comparative analysis with existing polymer-based resistive-type sensors further highlighted the superior sensing range, rapid dynamic response, and environmental sustainability of the developed sensor. This eco-friendly, biomass-derived, eco-friendly sensor shows potential for applications in environmental monitoring, smart agriculture, and industrial process control.

摘要

本研究展示了一种可持续柔性湿度传感器的制造方法,该传感器利用从黄粉虫生物质中提取的壳聚糖作为主要传感材料。基于壳聚糖的湿度传感器是通过将壳聚糖和聚乙烯醇(PVA)薄膜与叉指式铜电极浇铸而成,形成一种适用于实时电阻式湿度检测的层压复合材料。使用傅里叶变换红外(FTIR)光谱、接触角测量和拉伸测试对壳聚糖薄膜进行了全面表征,证实了其化学结构、润湿性和机械稳定性。所开发的传感器在6%至97%相对湿度(RH)范围内具有广泛的测量范围,灵敏度高达2.43 kΩ/%RH,响应时间快速,为18.22 s,相应的恢复时间为22.39 s。此外,在针对各种挥发性有机化合物(VOCs)进行测试时,基于壳聚糖的湿度传感器对水蒸气也表现出高选择性。传感器的优异性能归因于壳聚糖的结构特性,特别是其与水分子形成可逆氢键的能力。通过分子动力学模拟进一步阐明了这一机制,结果表明传感器中的电导率由质子迁移率调节,在高湿度条件下通过Grotthuss机制运行,在低湿度条件下通过堆积酸机制运行。此外,基于壳聚糖的湿度传感器进一步无缝集成到物联网(IoT)框架中,能够在移动设备上进行无线湿度监测和实时数据可视化。与现有的基于聚合物的电阻式传感器的对比分析进一步突出了所开发传感器卓越的传感范围、快速的动态响应和环境可持续性。这种环保的、源自生物质的传感器在环境监测、智能农业和工业过程控制中显示出应用潜力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/24a8/11769542/ad63d91fb13b/sensors-25-00575-g001.jpg

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