增强NO2气体感测:紫外和热活化对垂直排列Nb-MoS2的双重影响,以获得更好的响应和选择性

IF 9.1 1区 化学 Q1 CHEMISTRY, ANALYTICAL ACS Sensors Pub Date : 2025-03-02 DOI:10.1021/acssensors.4c03489
Suresh Kumar, Atanu Betal, Ashok Kumar, Atul G. Chakkar, Pradeep Kumar, Monika Kwoka, Satyajit Sahu, Mahesh Kumar
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摘要

二氧化氮(NO2)被认为是在内燃机废气中发现的一种高度危险的气体,它会在年轻时引起几种疾病。为了在室温下检测NO2,二维过渡金属二硫族化合物由于其较大的表面体积比而起着至关重要的作用。然而,其较高的检测限(LOD)、缓慢的响应和不完整的回收动力学阻碍了它们在高效气体传感器中的应用。为了解决这些问题,我们在SiO2/Si衬底上使用低压化学气相沉积技术制造了一种简单耐用的铌(Nb)掺杂二硫化钼(MoS2)传感器。掺杂是通过各种表征技术确认的。与原始MoS2相比,用不同重量百分比的铌(8、16和24%)制备了三批传感器。其中,16% Nb-MoS2传感器在100°C下对500 ppb NO2的相对响应大大增强了~ 30%,LOD为489 ppt。此外,该传感器在0.4 mW/cm2紫外光强度下,对50 ppm (500 ppb) NO2具有高达39%(18%)的超高响应,在室温下LOD较低,为117 ppt。此外,16% Nb-MoS2传感器对一系列还原性和氧化性气体表现出令人印象深刻的NO2选择性,以及出色的长期耐用性和稳定性。基于密度泛函理论计算,提出了一种综合气敏机理。计算的重点是确定16% Nb-MoS2纳米片吸附NO2的有利位置。该研究为提高基于nb - mos2的NO2气体传感器的效率提供了一种引人注目和实用的方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Enhancing NO2 Gas Sensing: The Dual Impact of UV and Thermal Activation on Vertically Aligned Nb-MoS2 for Superior Response and Selectivity
Nitrogen dioxide (NO2) is considered to be a highly hazardous gas found in combustion engine exhaust, which causes several diseases at a young age. To detect NO2 at room temperature (RT), two-dimensional transition metal dichalcogenides play an essential role because of their greater surface-to-volume ratio. However, their higher limit of detection (LOD), slow response, and incomplete recovery kinetics hinder their use in efficient gas sensors. To mitigate these issues, we fabricate a facile and robust niobium (Nb)-doped molybdenum disulfide (MoS2) sensor using low-pressure chemical vapor deposition on a SiO2/Si substrate. Doping is confirmed through various characterization techniques. As compared to pristine MoS2, three batches of sensors are prepared with different weight percentages of Nb (8, 16, and 24%). Out of these, the 16% Nb-MoS2 sensor gives a greatly enhanced relative response of ∼30% for 500 ppb NO2 at 100 °C with an LOD of 489 ppt. Also, the sensor gives an ultrahigh response of ∼39% (18%) for 50 ppm (500 ppb) NO2 under 0.4 mW/cm2 intensity of UV light and exhibits a lower LOD of 117 ppt at RT. In addition, the 16% Nb-MoS2 sensor shows impressive selectivity toward NO2 against a range of reducing and oxidizing gases, along with exceptional long-term durability and stability. Based on density functional theory calculations, a comprehensive gas sensing mechanism is proposed. The calculations focus on identifying the favorable sites for NO2 adsorption on 16% Nb-MoS2 nanoflakes. This study offers a compelling and practical approach to boosting the efficiency of Nb-MoS2-based NO2 gas sensors.
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来源期刊
ACS Sensors
ACS Sensors Chemical Engineering-Bioengineering
CiteScore
14.50
自引率
3.40%
发文量
372
期刊介绍: ACS Sensors is a peer-reviewed research journal that focuses on the dissemination of new and original knowledge in the field of sensor science, particularly those that selectively sense chemical or biological species or processes. The journal covers a broad range of topics, including but not limited to biosensors, chemical sensors, gas sensors, intracellular sensors, single molecule sensors, cell chips, and microfluidic devices. It aims to publish articles that address conceptual advances in sensing technology applicable to various types of analytes or application papers that report on the use of existing sensing concepts in new ways or for new analytes.
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