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I-Corps: Efficient nanowire based gas sensor

I-Corps: Efficient nanowire based gas sensor
I-Corps:基于纳米线的高效气体传感器
批准号:
1643105
负责人:
Usha Philipose
金额:
$5.0万
依托单位:
依托单位国家:
美国
项目类别:
Standard Grant
财政年份:
2016
资助国家:
美国
项目状态:
已结题
起止时间:
2016-08-01 至 2017-01-31

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中文摘要
翻译
这个I-Corps项目的更广泛影响/商业潜力是开发一个传感器平台,可以监测环境中有毒气体的存在。该设备旨在用于广泛的应用,从其在石油和天然气工业中的使用到其在法律和秩序以及健康相关领域中的呼吸分析器的使用。拟议中的纳米级设备将导致相对便宜和可靠的气体传感器,可用于天然气开采现场周围,以监测二氧化硫,甲烷,一氧化碳,氨和氢等有毒气体的浓度极低。它们也可以安装在学校和医院的特定区域。医务人员可以使用传感器来测试呼出空气的质量,以检测高水平的一氧化氮(高水平表明哮喘),硫(高水平表明肝功能障碍)和丙酮(糖尿病患者中的高水平)。这个I-Corps项目提出使用一维纳米线作为传感元件,其工作原理是纳米线的电阻随着其表面被吸附的气体分子改性而改变。纳米线具有几十微米的长度和纳米范围内的直径,具有大的表面积与体积比。因此,在每个纳米线上将有大量的表面位点,以促进与吸附的气体分子的表面反应。该项目是基于成功的实验,在暴露于氨,甲醇,氯,氢和硫等气体的几秒钟内测量单个纳米线的电导率的显着变化。的传感机制是占主导地位的纳米线沟道电导的变化引起的能带结构的变化时,气体分子吸附在纳米线表面上。纳米级传感器预计将具有高灵敏度,响应速度更快,可以在室温下工作,需要低工作功率。为了增加气体选择性,可以向纳米线表面添加附加特征。 将这种纳米线阵列安装在单个芯片上将产生一种高度通用的设备,可用于监测和传感我们周围环境中的有毒气体。
英文摘要
The broader impact/commercial potential of this I-Corps project is the development of a sensor platform that can monitor the presence of toxic gases in the environment. The device is intended for a wide range of applications ranging from its use in the oil and gas industry to its use as breath analyzers with applications in law and order as well as in health related fields. The proposed nanoscale device will result in relatively cheap and reliable gas sensors that can be used around gas extraction sites to monitor extremely small concentrations of toxic gases like sulphur dioxide, methane, carbon-monoxide, ammonia and hydrogen. They can also be mounted in select areas in schools and hospitals. Medical personnel could use the sensor to test the quality of exhaled air to detect high levels of nitric oxide (high levels indicative of asthma), sulfur (high levels indicative of liver dysfunction) and acetone (high levels in diabetic patients).This I-Corps project proposes to use one-dimensional nanowires as sensing elements, working on the principle that the nanowire resistance changes as its surface is modified by adsorbed gas molecules. With lengths of several tens of microns and diameters in the range of nanometers, nanowires have large surface-to-volume ratio. Hence a large number of surface sites will be available on each nanowire to facilitate surface reactions with the adsorbed gas molecules. The project is based on successful experiments where significant changes in the electrical conductance of individual nanowires were measured within several seconds of exposure to gases like ammonia, methanol, chlorine, hydrogen, and sulfur. The sensing mechanism is dominated by changes in the nanowire channel conductance caused by a change in the energy band structure when gas molecules are adsorbed on the nanowire surface. The nanoscale sensors are expected to be highly sensitive, with faster responses and can operate at room temperature, requiring low operating power. To increase gas selectivity, additional features can be added to the nanowire surface. Arrays of such nanowires mounted on a single chip will result in a highly versatile device that can be used for monitoring and sensing toxic gases in our immediate environment.
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