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TiS纳米盘中的物理吸附介导电荷转移:用于高灵敏度和可逆二氧化碳检测的室温传感器

Physisorption-Mediated Charge Transfer in TiS Nanodiscs: A Room Temperature Sensor for Highly Sensitive and Reversible Carbon Dioxide Detection.

作者信息

Manzoor Samrah, Talib Mohammad, Novikov Sergey M, Arsenin Aleksey V, Volkov Valentyn S, Mishra Prabhash

机构信息

Centre for Nanoscience and Nanotechnology, Jamia Millia Islamia (Central University), Jamia Nagar, New Delhi 110025, India.

Moscow Center for Advanced Studies, Kulakova Street 20, Moscow 123592, Russia.

出版信息

ACS Sens. 2023 Sep 22;8(9):3435-3447. doi: 10.1021/acssensors.3c00931. Epub 2023 Sep 12.

Abstract

Real-time and high-performance monitoring of trace carbon dioxide (CO) has become a necessity due to its substantial impact on the global climate, human health, indoor occupancy, and crop productivity. Two-dimensional materials such as transition metal dichalcogenides (TMDs) have gained significant interest in gas sensing applications owing to their intrinsically high surface-to-volume ratio. However, the research has been limited to prominent TMDs such as WS and MoS. Specifically, the chemiresistive sensing performance of titanium disulfide (TiS) has rarely been investigated. We present an electric-field-assisted TiS nanodisc assembly for the fabrication of a low-cost, low-power CO gas sensor based on charge transfer between physisorbed CO analyte molecules and TiS nanodiscs operating at room temperature. The physiochemical properties of the synthesized TiS nanodiscs were investigated via scanning electron microscopy (SEM), electron diffraction spectroscopy (EDS), transmission electron microscopy (TEM), X-ray diffraction (XRD), and Raman spectroscopy. The fabricated sensor demonstrated an ultra-high sensor response of 60%, a fast response time of 37 s toward 500 ppm CO gas, and the lowest detection limit of 5 ppm under ambient conditions. The low adsorption energies and vdW interaction between CO molecules and TiS resulted in easy desorption, allowing the sensor to self-recover without the need for external stimuli, which is hardly been witnessed in other 2D material analogues. Furthermore, the sensor has excellent reproducibility and stability for successive analyte exposures, as well as excellent selectivity for CO over other interfering gases. This reported sensor based on 2D TMDs is the first of its type to integrate such a broad range of sensor characteristics (such as high sensor response and sensitivity, rapid response and recovery times, a high signal-to-noise ratio, and excellent selectivity at room temperature) into a single, revolutionary device for CO detection.

摘要

由于微量二氧化碳(CO)对全球气候、人类健康、室内居住情况和作物生产力有重大影响,对其进行实时、高性能监测已成为必要。二维材料,如过渡金属二硫属化物(TMDs),因其固有的高比表面积,在气体传感应用中引起了极大关注。然而,研究仅限于诸如WS₂和MoS₂等著名的TMDs。具体而言,二硫化钛(TiS₂)的化学电阻传感性能很少被研究。我们提出了一种电场辅助的TiS₂纳米盘组件,用于制造一种基于室温下物理吸附的CO分析物分子与TiS₂纳米盘之间电荷转移的低成本、低功耗CO气体传感器。通过扫描电子显微镜(SEM)、电子衍射光谱(EDS)、透射电子显微镜(TEM)、X射线衍射(XRD)和拉曼光谱对合成的TiS₂纳米盘的物理化学性质进行了研究。所制备的传感器表现出60%的超高传感器响应,对500 ppm CO气体的快速响应时间为37 s,在环境条件下最低检测限为5 ppm。CO分子与TiS₂之间的低吸附能和范德华相互作用导致易于解吸,使传感器无需外部刺激即可自我恢复,这在其他二维材料类似物中很少见。此外,该传感器对连续的分析物暴露具有出色的重现性和稳定性,以及对CO相对于其他干扰气体的出色选择性。这种基于二维TMDs的报道传感器是同类中的首个,将如此广泛的传感器特性(如高传感器响应和灵敏度、快速响应和恢复时间、高信噪比以及室温下的出色选择性)集成到一个用于CO检测的单一、革命性设备中。

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