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使用Sn-SnO纳米复合材料的耐室温湿度二甲苯传感器。

Room Temperature Humidity Tolerant Xylene Sensor Using a Sn-SnO Nanocomposite.

作者信息

Verma Mohit, Bahuguna Gaurav, Saharan Arpit, Gaur Snehraj, Haick Hossam, Gupta Ritu

机构信息

Advanced Materials and Devices Laboratory, Department of Chemistry, Indian Institute of Technology Jodhpur, Jodhpur, Rajasthan342037, India.

Department of Chemical Engineering and Russell Berrie Nanotechnology Institute, Technion - Israel Institute of Technology, Haifa3200003, Israel.

出版信息

ACS Appl Mater Interfaces. 2023 Feb 1;15(4):5512-5520. doi: 10.1021/acsami.2c22417. Epub 2023 Jan 18.

Abstract

Xylene is one of the representative indoor pollutants, even in ppb levels, that affect human health directly. Due to the non-polar and less reactive nature of xylene, its room temperature detection is challenging. This work demonstrates a metallic tin-doped Sn-SnO nanocomposite under controlled pH conditions via a simple solvothermal route. The Sn nanoparticles are uniformly distributed inside the SnO nanospheres of ∼70 nm with a high specific surface area of 118.8 m/g. The surface of the Sn-SnO nanocomposite exhibits strong affinity toward benzene, toluene, ethylbenzene, and xylene (BTEX) compared to other polar volatile organic compounds (VOCs) such as ethanol, acetone, isopropyl alcohol, formaldehyde, and chloroform tested in this study. The sensor's response is highest for xylene among BTEX molecules. Under ambient room temperature conditions, the sensor exhibits a linear response to xylene in the 1-100 ppm range with a sensitivity of ∼255% at 60 ppm within ∼1.5 s and recovers in ∼40 s. The sensor is hardly affected by humidity variations (40-70%), leading to enhanced reliability and repeatability under dynamic environmental conditions. The meso and microporous nanosphere morphology act as a nanocontainer for non-polar VOCs to diffuse inside the nanostructures, providing easy accessibility. The metallic Sn increases the affinity for less reactive xylene at room temperature. Thus, the nanocatalytic Sn-SnO nanocomposite is an active gas/VOC sensing material and provides an effective solution for sensing major indoor pollutants under humid conditions.

摘要

二甲苯是典型的室内污染物之一,即使在十亿分比浓度水平下也会直接影响人体健康。由于二甲苯具有非极性且反应活性较低的特性,在室温下对其进行检测具有挑战性。本研究通过简单的溶剂热法,在可控的pH条件下制备了金属锡掺杂的Sn-SnO纳米复合材料。Sn纳米颗粒均匀分布在直径约70 nm的SnO纳米球内部,比表面积高达118.8 m²/g。与本研究中测试的其他极性挥发性有机化合物(VOCs),如乙醇、丙酮、异丙醇、甲醛和氯仿相比,Sn-SnO纳米复合材料表面对苯、甲苯、乙苯和二甲苯(BTEX)表现出更强的亲和力。在BTEX分子中,该传感器对二甲苯的响应最高。在环境室温条件下,该传感器对1-100 ppm范围内的二甲苯呈现线性响应,在60 ppm时灵敏度约为255%,响应时间约为1.5 s,恢复时间约为40 s。该传感器几乎不受湿度变化(40-70%)的影响,在动态环境条件下具有更高的可靠性和可重复性。介孔和微孔纳米球形态为非极性VOCs在纳米结构内部扩散提供了纳米容器,使其易于进入。金属Sn提高了在室温下对反应活性较低的二甲苯的亲和力。因此,这种纳米催化的Sn-SnO纳米复合材料是一种活性气体/VOC传感材料,为在潮湿条件下检测主要室内污染物提供了有效的解决方案。

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