Du Yang, Zhang Hongbo, Zheng Jilong, Li Quanxin, Xu Ruiqian, Xu Jingwen, Song Yan-Yan, Song Pei, Gao Zhida, Zhao Chenxi
College of Sciences, Northeastern University, Shenyang 110819, China.
School of Police Dog Technology, Criminal Investigation Police University of China, No. 4 White Hill Road, Shenyang 110854, China.
ACS Sens. 2025 Apr 25;10(4):3072-3080. doi: 10.1021/acssensors.5c00205. Epub 2025 Apr 3.
Exhaled breath is considered an important source of samples and a reservoir of biomarkers, especially for disease diagnosis. In this study, we developed an ultrasensitive point-of-care gas sensor for the analysis of hydrogen sulfide (HS), which is a typical biomarker for periodontitis. A high-performance metal oxide semiconductor (MOS)-based chemiresistive HS sensor was developed by integrating Fe-doped MoO onto TiO nanotube arrays. The substitution of Fe atoms into MoO not only induced oxygen vacancies, but also generated defect levels in the MoO/TiO heterostructure, thus synergistically activating the gas sensing reaction at room temperature under ambient light. The resulting gas sensor exhibited ultrahigh sensitivity, fast response/recovery ability, and wide-range response to HS concentrations up to 400 ppm. Furthermore, the sensing device maintained more than 95% of its original response at 70% relative humidity. With a subparts-per-billion limit of detection (the LOD for HS was 0.34 ppb), the present sensor represents the most sensitive HS chemiresistor reported to date for room-temperature, real-time monitoring of HS concentration changes in the breath of healthy subjects, as well as for distinguishing breath samples of periodontitis patients and healthy individuals. This study utilizes the synergistic action of defects to provide an effective route for developing MOS-based ultrasensitive HS sensors for periodontitis diagnosis.
呼出气体被认为是重要的样本来源和生物标志物的储存库,尤其对于疾病诊断而言。在本研究中,我们开发了一种用于分析硫化氢(HS)的超灵敏即时检测气体传感器,硫化氢是牙周炎的一种典型生物标志物。通过将铁掺杂的MoO集成到TiO纳米管阵列上,开发了一种基于高性能金属氧化物半导体(MOS)的化学电阻式HS传感器。铁原子取代MoO中的原子不仅会诱导氧空位,还会在MoO/TiO异质结构中产生缺陷能级,从而在室温下于环境光下协同激活气敏反应。所得的气体传感器表现出超高灵敏度、快速响应/恢复能力以及对高达400 ppm的HS浓度的宽范围响应。此外,该传感装置在相对湿度为70%时保持其原始响应的95%以上。凭借十亿分之几的检测限(HS的检测限为0.34 ppb),本传感器是迄今为止报道的用于室温下实时监测健康受试者呼出气体中HS浓度变化以及区分牙周炎患者和健康个体呼出气体样本的最灵敏的HS化学电阻器。本研究利用缺陷的协同作用为开发用于牙周炎诊断的基于MOS的超灵敏HS传感器提供了一条有效途径。