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Printable Gas Sensors Using Functional 2d materials

Printable Gas Sensors Using Functional 2d materials
使用功能性二维材料的可打印气体传感器
批准号:
1944189
负责人:
金额:
$0.0万
依托单位:
依托单位国家:
英国
项目类别:
Studentship
财政年份:
2017
资助国家:
英国
项目状态:
已结题
起止时间:
2017 至 --

项目摘要

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中文摘要
翻译
气体传感器在监测城市污染、室内空气质量和工业过程中发挥着关键作用。几十年来,半导体金属氧化物(MOX)一直主导着耐化学性商业气敏市场。然而,MOX传感器存在响应和恢复时间长、功耗高等缺点。石墨烯之后,新一代二维(2D)材料如二硫化钼(MoS2)、黑磷(BP)和石墨化碳氮化物(g-C3N4)因其较大的比表面积和强的电子相互作用而引起了人们对气体传感的浓厚兴趣。这些新型的2D材料的半导体性质对化学变化高度敏感,这使得它们在传感应用中特别有吸引力。本项目的目的是通过纳米工程来解决传统MOX传感器的缺点,例如具有优越传感能力的2D材料薄膜传感器平台。通过采用可扩展的纳米制造策略,该项目将开发低成本、高性能的气体传感器,可用于消费级室内空气质量监测。学生将在剑桥石墨烯中心的混合纳米材料工程研究小组(http://hne.eng.cam.ac.uk))工作,并与诺瓦利亚有限公司的克里斯·琼斯先生密切合作。他将帮助学生开发功能墨水配方,并促进使用合成材料进行气体传感器的工业打印。项目描述:该项目的第一阶段将研究原子稀薄g-C3N4的合成,MoS_2和BP纳米片在液体环境中。随后将在这些原子薄材料上水热生长金属氧化物。以下是这些复合材料的表征(包括电子显微镜、拉曼光谱、原子力显微镜),具有适当流变性的功能油墨配方将被开发用于按需喷墨和丝网印刷。然后,材料将用于制造传感器,用于在CGC中进行表征。合成的材料将根据设备的响应进行化学掺杂或功能化,以在灵敏度和选择性方面获得最佳的气敏性能。特别强调可扩展的合成和传感器制造策略。学生将根据PI研究小组的最新发展,深入了解用于印刷气敏器件和部件的功能油墨配方和合适的金属氧化物和2D材料。
英文摘要
Gas sensors play a key role in monitoring urban pollution, indoor air quality and industrial processes. Semiconducting metal oxides (MOx) have dominated the chemiresistive commercial gas sensing market for decades. However, MOx sensors suffer from long response and recovery time and typically have high power consumption.Beyond graphene, a new generation of 2-dimenstional (2D) material such as molybdenum disulfide (MoS2), black phosphorus (BP) and graphitic carbon nitride (g-C3N4) have attracted a strong interest in gas sensing due to their large surface area and strong electron interaction. The semiconducting properties of these novel 2D materials are highly sensitive to chemical changes, making them particularly attractive for sensing applications.The aim of this project is to address the shortcomings of traditional MOx sensors by nano-engineering such 2D material based thin-film sensor platform with superior sensing ability. By adopting scalable nanomanufacturing strategies, the project will develop low cost, high performance gas sensors that could be exploited for consumer grade indoor air quality monitoring.The student will be based with the Hybrid Nanomaterials Engineering research group (http://hne.eng.cam.ac.uk) at the Cambridge Graphene Centre and closely work in collaboration with Mr Chris Jones of Novalia Ltd. He will help the student in the development of functional ink formulation and facilitate industrial scale printing of the gas sensors using the synthesised materials.Description of the project:The first stage of the project will investigate synthesis of atomically thin g-C3N4, MoS2 and BP nanosheets in a liquid environment.This will be followed by hydrothermal growth of metal oxides on these atomically thin materials.Following characterization of these composite materials (including electron microscopy, Raman spectroscopy, Atomic Force microscopy), formulation of functional inks with appropriate rheological properties will be developed for drop on demand inkjet and screen-printing.The materials will then be used to fabricate sensors for characterization in the CGC.The synthesised materials will be chemically doped or functionalised according to the device response for optimum gas sensing performance in terms of sensitivity and selectivity.Particular emphasis will be given on a scalable synthesis and sensor manufacturing strategy.The student will develop a deep insight into functional ink formulation with suitable metal oxides and 2d materials for printed gas sensing devices and components, based on the recent developments within the PI's research group.
期刊论文(1)
专著(0)
科研奖励(0)
会议论文
2d-Material Dispersion and Printing: From Laboratory to Commercial Scale
二维材料分散和打印:从实验室到商业规模
DOI: 10.17863/cam.100554
发表时间: 2023
期刊:
影响因子: --
作者: [Macadam N]
通讯作者: Macadam N
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