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运输过程中用于食品和医疗包装的碳基传感器的最新进展:聚焦湿度、温度、机械和多功能传感技术——系统综述

Recent Advances in Carbon-Based Sensors for Food and Medical Packaging Under Transit: A Focus on Humidity, Temperature, Mechanical, and Multifunctional Sensing Technologies-A Systematic Review.

作者信息

Guo Siting, Radecka Iza, Eissa Ahmed M, Ivanov Evgeni, Stoeva Zlatka, Tchuenbou-Magaia Fideline

机构信息

Centre for Engineering Innovation and Research, School of Engineering, Computing and Mathematical Sciences, Faculty of Science and Engineering, University of Wolverhampton, Wolverhampton WV1 1LY, UK.

Research Institute of Healthcare Sciences, School of Pharmacy & Life Sciences, Faculty of Science and Engineering, University of Wolverhampton, Wulfruna Street, Wolverhampton WV1 1LY, UK.

出版信息

Materials (Basel). 2025 Apr 18;18(8):1862. doi: 10.3390/ma18081862.

Abstract

All carbon-based sensors play a critical role in ensuring the sustainability of smart packaging while enabling real-time monitoring of parameters such as humidity, temperature, pressure, and strain during transit. This systematic review covers the literature between 2013 and 16 November 2024 in the Scopus, Web of Science, IEEE Xplore, and Wiley databases, focusing on carbon-based sensor materials, structural design, and fabrication technologies that contribute to maximizing the sensor performance and scalability with particular emphasis on food and pharmaceutical product packaging applications. After being subjected to the inclusion and exclusion criteria, 164 studies were included in this review. The results show that most humidity sensors are made using graphene oxide (GO), though there is some progress toward cellulose and cellulose-based materials. Graphene and carbon nanotubes (CNTs) are predominant in temperature and mechanical sensors. The application of composites with structural design (e.g., porous and 3D structures) significantly improves sensitivity, long-term stability, and multifunctionality, whereas manufacturing methods such as spray coating and 3D printing further drive production scalability. The transition from metal to carbon-based electrodes could also reduce the cost. However, the scalability, long-term stability, and real-world validation remain challenges to be addressed. Future research should further enhance the performance and scalability of carbon-based sensors through low-energy fabrication techniques and the development of sustainable advanced materials to provide solutions for practical applications in dynamic transportation environments.

摘要

所有碳基传感器在确保智能包装的可持续性方面发挥着关键作用,同时能够在运输过程中实时监测湿度、温度、压力和应变等参数。本系统综述涵盖了2013年至2024年11月16日期间Scopus、Web of Science、IEEE Xplore和Wiley数据库中的文献,重点关注有助于最大限度提高传感器性能和可扩展性的碳基传感器材料、结构设计和制造技术,特别强调食品和药品包装应用。经过纳入和排除标准筛选后,本综述纳入了164项研究。结果表明,大多数湿度传感器是用氧化石墨烯(GO)制成的,不过在纤维素和纤维素基材料方面也取得了一些进展。石墨烯和碳纳米管(CNT)在温度和机械传感器中占主导地位。具有结构设计(如多孔和3D结构)的复合材料的应用显著提高了灵敏度、长期稳定性和多功能性,而诸如喷涂和3D打印等制造方法进一步推动了生产的可扩展性。从金属电极向碳基电极的转变也可以降低成本。然而,可扩展性、长期稳定性和实际验证仍然是有待解决的挑战。未来的研究应通过低能耗制造技术和开发可持续的先进材料,进一步提高碳基传感器的性能和可扩展性,为动态运输环境中的实际应用提供解决方案。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4e13/12028959/5432d5cf1596/materials-18-01862-g001.jpg

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