Nanostructured zinc oxide and selenide-based materials for gas sensing application: review

IF 2.8 4区 工程技术 Q2 ENGINEERING, ELECTRICAL & ELECTRONIC Journal of Materials Science: Materials in Electronics Pub Date : 2025-02-14 DOI:10.1007/s10854-025-14401-1
Ruchika Thayil, Saidi Reddy Parne
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Abstract

The exploration and advancement of zinc oxide and selenide-based materials for gas sensing have seen considerable interest in recent years. These materials offer promising potential for gas sensing; however, their widespread application has been hampered by several critical challenges, including low sensitivity, lengthy recovery times, high operating temperatures, and issues with achieving complete recovery after exposure to target gases. As a result, significant research efforts have been focused on developing and optimizing gas sensors with enhanced performance characteristics. Recently, zinc selenide nanostructures have demonstrated notable room-temperature gas sensing performance. They also offer several advantages, including lower operating temperatures, enhanced sensitivity, and improved selectivity. It is also an excellent host for the formation of doped nanocrystals. This review delves into the comprehensive studies conducted in this domain, with a particular focus on the properties of these materials. Additionally, it examines various synthesis approaches employed to create these nanostructured materials, as well as innovative strategies such as the creation of nanocomposites and designing morphologies to improve the sensitivity, response times, selectivity, and overall effectiveness of gas sensors. The review also addresses the ongoing challenges in this field, such as improving the sensitivity, stability, selectivity, and reproducibility of these sensors. Finally, we highlight potential future directions for research, suggesting ways in which these nanostructures could be further developed to become more efficient and reliable gas sensors for their applications in environmental monitoring, flexible electronics, and wearable devices.

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近年来,人们对用于气体传感的氧化锌和硒化物基材料的探索和研究兴趣浓厚。这些材料为气体传感提供了广阔的发展前景;然而,它们的广泛应用却受到一些关键挑战的阻碍,其中包括灵敏度低、恢复时间长、工作温度高以及暴露于目标气体后无法实现完全恢复等问题。因此,大量研究工作都集中在开发和优化具有更高性能特征的气体传感器上。最近,硒化锌纳米结构展示了显著的室温气体传感性能。它们还具有多种优势,包括更低的工作温度、更高的灵敏度和更好的选择性。硒化银还是形成掺杂纳米晶体的优良宿主。本综述深入探讨了在这一领域开展的综合研究,尤其关注这些材料的特性。此外,它还探讨了用于制造这些纳米结构材料的各种合成方法,以及创新策略,如制造纳米复合材料和设计形态,以提高气体传感器的灵敏度、响应时间、选择性和整体效果。综述还讨论了该领域目前面临的挑战,如提高这些传感器的灵敏度、稳定性、选择性和可重复性。最后,我们强调了未来潜在的研究方向,提出了进一步开发这些纳米结构的方法,使其成为更高效、更可靠的气体传感器,应用于环境监测、柔性电子和可穿戴设备。
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来源期刊
Journal of Materials Science: Materials in Electronics
Journal of Materials Science: Materials in Electronics 工程技术-材料科学:综合
CiteScore
5.00
自引率
7.10%
发文量
1931
审稿时长
2 months
期刊介绍: The Journal of Materials Science: Materials in Electronics is an established refereed companion to the Journal of Materials Science. It publishes papers on materials and their applications in modern electronics, covering the ground between fundamental science, such as semiconductor physics, and work concerned specifically with applications. It explores the growth and preparation of new materials, as well as their processing, fabrication, bonding and encapsulation, together with the reliability, failure analysis, quality assurance and characterization related to the whole range of applications in electronics. The Journal presents papers in newly developing fields such as low dimensional structures and devices, optoelectronics including III-V compounds, glasses and linear/non-linear crystal materials and lasers, high Tc superconductors, conducting polymers, thick film materials and new contact technologies, as well as the established electronics device and circuit materials.
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