Cai Sijin, Huang Xingpeng, Luo Manyu, Xiong Deshou, Pang Wei, Wang Meiling, Wang Li, Li Shuang, Luo Peng, Gao Zhixian
School of Public Health, The Key Laboratory of Environmental Pollution Monitoring and Disease Control, Ministry of Education, Guizhou Medical University, Guiyang, 561113, China; Tianjin Key Laboratory of Risk Assessment and Control Technology for Environment and Food Safety, Military Medical Sciences Academy, Tianjin, 300050, China.
Tianjin Key Laboratory of Risk Assessment and Control Technology for Environment and Food Safety, Military Medical Sciences Academy, Tianjin, 300050, China.
Talanta. 2025 Apr 1;285:127226. doi: 10.1016/j.talanta.2024.127226. Epub 2024 Nov 19.
Sensitive detection of ammonia in the environment is crucial due to its potential danger to human ecology and health. In gas detection technology, resistive sensors utilizing golden cross finger electrodes combined with gas-sensitive materials are commonly employed. In this study, we demonstrated a room-temperature sensor for ambient ammonia detection. The sensor is composed of two-dimensional layer-stacked metal-organic framework (MOF) Cu(HITP) nanomaterials drop-coated onto gold-forked finger electrodes. Density-functional theory simulation (DFT) and sensor gas-sensitive performance testing were conducted for characterization. The sensor exhibited high sensitivity, selectivity, low detection limit, excellent reproducibility, and stability. This can be attributed to the abundant Cu active sites exposed in the hexagonal ring and layer-stacked framework structure of Cu(HITP) nanomaterials. Ammonia adsorption leads to electron transfer into the Cu(HITP) framework, resulting in decreased sensor resistance. Real-time monitoring of sensor resistance changes enabled quantitative analysis. Results showed a 91.4 % response of the Cu(HITP) sensor to 100 ppm NH, with response and recovery times of 26 s and 20 s, respectively. The sensor's limit of detection (LOD) was approximately 15 ppb. The sensor exhibited a relatively high response to NH at 25 °C, as demonstrated by dynamic gradient test curves. These findings suggest that constituting a room-temperature ammonia sensor by uniformly drop-coating Cu(HITP) onto a gold-forked finger electrode is a feasible strategy.
由于氨对人类生态和健康存在潜在危害,因此对环境中氨进行灵敏检测至关重要。在气体检测技术中,通常采用利用金叉指电极与气敏材料相结合的电阻式传感器。在本研究中,我们展示了一种用于检测环境中氨的室温传感器。该传感器由滴涂在金叉指电极上的二维层状金属有机框架(MOF)Cu(HITP)纳米材料组成。进行了密度泛函理论模拟(DFT)和传感器气敏性能测试以进行表征。该传感器表现出高灵敏度、选择性、低检测限、出色的重现性和稳定性。这可归因于Cu(HITP)纳米材料的六元环和层状框架结构中暴露的丰富Cu活性位点。氨吸附导致电子转移到Cu(HITP)框架中,从而导致传感器电阻降低。通过实时监测传感器电阻变化实现了定量分析。结果表明,Cu(HITP)传感器对100 ppm NH₃的响应率为91.4%,响应时间和恢复时间分别为26 s和20 s。该传感器的检测限(LOD)约为15 ppb。动态梯度测试曲线表明,该传感器在25℃时对NH₃表现出相对较高的响应。这些发现表明,通过将Cu(HITP)均匀滴涂在金叉指电极上来构建室温氨传感器是一种可行的策略。