Ahmad Khursheed, Raza Waseem, Khan Rais Ahmad
School of Materials Science and Engineering, Yeungnam University, Gyeongsan 38541, Republic of Korea.
Department of Materials Science and Engineering, WW4-LKO, University of Erlangen-Nuremberg, Martensstrasse 7, 91058 Erlangen, Germany.
Micromachines (Basel). 2024 May 9;15(5):633. doi: 10.3390/mi15050633.
Hydrazine is considered a powerful reducing agent and catalyst, showing diverse applications in agricultural industries, toxic degradation research, and wastewater management. Additionally, hydrazine can trigger some specific reactions when combined with suitable oxidants. Due to its highly polar nature, hydrazine can easily dissolve in alcohol, water, and various other polar solvents. Therefore, it can be extensively utilized in different areas of application and industries such as rocketry and various chemical applications. Despite its beneficial properties, hydrazine is unstable, posing significant risk due to its highly toxic nature. It is extremely hazardous to both human health and the environment. It can cause various illnesses and symptoms such as dizziness, temporary blindness, damage to the central nervous system, and even death when inhaled in sufficient quantities. Therefore, it is highly important to monitor the level of hydrazine to prevent its toxic and hazardous effects on human beings and the environment. In the present study, we discuss the simple fabrication of a disposable cost-effective and eco-friendly hydrazine sensor. We used a screen-printed carbon electrode, i.e., SPCE, as a base for the construction of a hydrazine sensor. The TiAlC MAX has been used as a suitable and efficient electrode material for the fabrication of disposable hydrazine sensors. We modified the active surface of the SPCE using a drop-casting approach. The resulting TiAlC MAX modified SPCE (TiAlC@SPCE) has been utilized as an efficient and low-cost hydrazine sensor. Cyclic voltammetry, i.e., CV, and linear sweep voltammetry, viz., LSV, was employed as a sensing technique in this study. The optimization of pH and electrode material loading was conducted. The TiAlC@SPCE exhibited excellent sensing performance toward hydrazine oxidation. A reasonable detection limit (0.01 µM) was achieved for hydrazine sensing. The fabricated sensor also demonstrated a reasonable linear range of 1-50 µM. This work provides the design and fabrication of simple disposable TiAlC@SPCE as a suitable electrode for the determination of hydrazine using LSV technology.
肼被认为是一种强还原剂和催化剂,在农业、有毒物质降解研究及废水处理等领域有多种应用。此外,肼与合适的氧化剂结合时会引发一些特定反应。由于其高度极性的性质,肼能轻易溶解于酒精、水及其他各种极性溶剂中。因此,它可广泛应用于不同领域和行业,如火箭技术及各种化学应用。尽管肼有诸多有益特性,但它不稳定,因其高毒性而带来重大风险。它对人类健康和环境都极具危害。吸入足量肼会导致各种疾病和症状,如头晕、暂时失明、中枢神经系统损伤,甚至死亡。因此,监测肼的含量以防止其对人类和环境产生有毒有害影响至关重要。在本研究中,我们讨论了一种一次性、经济高效且环保的肼传感器的简易制备方法。我们使用丝网印刷碳电极(即SPCE)作为构建肼传感器的基础。TiAlC MAX已被用作制备一次性肼传感器的合适且高效的电极材料。我们采用滴铸法对SPCE的活性表面进行修饰。所得的TiAlC MAX修饰的SPCE(TiAlC@SPCE)已被用作一种高效且低成本的肼传感器。本研究采用循环伏安法(即CV)和线性扫描伏安法(即LSV)作为传感技术。对pH值和电极材料负载量进行了优化。TiAlC@SPCE对肼氧化表现出优异的传感性能。肼传感实现了合理的检测限(0.01 μM)。所制备的传感器还展示了1 - 50 μM的合理线性范围。这项工作提供了简单一次性TiAlC@SPCE的设计与制备,作为使用LSV技术测定肼的合适电极。