Recent Advances in Flexible and Wearable Gas Sensors Harnessing the Potential of 2D Materials.

IF 8.3 Q1 MATERIALS SCIENCE, MULTIDISCIPLINARY
Small Science Pub Date : 2025-06-30 eCollection Date: 2025-08-01 DOI:10.1002/smsc.202500025
Azmira Jannat, Md Mehdi Masud Talukder, Zhong Li, Jian Zhen Ou
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引用次数: 0

Abstract

In the Internet of Things era, flexible and wearable gas sensors are increasingly vital for real-time monitoring in healthcare, environmental safety, and industrial security. These sensors detect hazardous gases at room temperature and seamlessly integrate with clothing and portable devices. The 2D materials, including transition metal dichalcogenides, black phosphorus, MXenes, graphene and its derivatives, and metal-organic frameworks, stand out due to their exceptional electrical, mechanical, and physicochemical properties, such as large surface areas, high carrier mobility, and intrinsic flexibility. This review summarizes recent advancements in designing, fabricating, and applying 2D-material-based flexible gas sensors. It highlights how engineering approaches like defect creation, composite formation, and surface functionalization significantly enhance sensor sensitivity, selectivity, and response times. Comparative performance data across various material families are presented, alongside effective strategies for integrating 2D materials onto diverse flexible substrates such as polymers, textiles, and paper, emphasizing durability under mechanical stress. The review critically addresses current challenges, including large-scale manufacturing, long-term stability, and interference from ambient humidity. Furthermore, it explores innovative solutions like self-healing sensors, artificial intelligence-driven sensor arrays, in situ surface passivation, and multisensor platforms coupled with machine learning algorithms, offering valuable insights for advancing next-generation wearable gas-sensing technologies.

利用二维材料潜力的柔性和可穿戴气体传感器的最新进展。
在物联网时代,灵活、可穿戴的气体传感器在医疗保健、环境安全和工业安全的实时监控中越来越重要。这些传感器在室温下检测有害气体,并与衣服和便携式设备无缝集成。二维材料,包括过渡金属二硫族化合物、黑磷、MXenes、石墨烯及其衍生物和金属有机框架,因其特殊的电学、机械和物理化学性质而脱颖而出,如大表面积、高载流子迁移率和固有的柔韧性。本文综述了基于2d材料的柔性气体传感器的设计、制造和应用方面的最新进展。它强调了工程方法,如缺陷产生、复合材料形成和表面功能化如何显著提高传感器的灵敏度、选择性和响应时间。介绍了不同材料家族的比较性能数据,以及将2D材料集成到不同柔性基材(如聚合物、纺织品和纸张)上的有效策略,强调了机械应力下的耐久性。该综述批判性地解决了当前的挑战,包括大规模制造、长期稳定性和环境湿度的干扰。此外,它还探索了自修复传感器、人工智能驱动的传感器阵列、原位表面钝化以及结合机器学习算法的多传感器平台等创新解决方案,为推进下一代可穿戴气体传感技术提供了有价值的见解。
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来源期刊
CiteScore
14.00
自引率
2.40%
发文量
0
期刊介绍: Small Science is a premium multidisciplinary open access journal dedicated to publishing impactful research from all areas of nanoscience and nanotechnology. It features interdisciplinary original research and focused review articles on relevant topics. The journal covers design, characterization, mechanism, technology, and application of micro-/nanoscale structures and systems in various fields including physics, chemistry, materials science, engineering, environmental science, life science, biology, and medicine. It welcomes innovative interdisciplinary research and its readership includes professionals from academia and industry in fields such as chemistry, physics, materials science, biology, engineering, and environmental and analytical science. Small Science is indexed and abstracted in CAS, DOAJ, Clarivate Analytics, ProQuest Central, Publicly Available Content Database, Science Database, SCOPUS, and Web of Science.
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