Foronda Juanito Raphael F, Aryaswara Lugas Gada, Santos Gil Nonato C, Raghu Swathi N V, Muflikhun Muhammad Akhsin
Physics Department, De La Salle University, Manila, Philippines.
Mechanical and Industrial Engineering Department, Gadjah Mada University, Indonesia.
Heliyon. 2023 Feb 5;9(2):e13544. doi: 10.1016/j.heliyon.2023.e13544. eCollection 2023 Feb.
Metal-oxide doped conductive polymers have been investigated as sensors in the field of gas-sensing. Recent developments have highlighted the role of intrinsically conductive polymers, that have reportedly offered high surface response towards the detection of volatile organic compounds (VOCs). In this work, we optimize the development of gas-sensors made of Polyaniline/Zinc oxide (PANI/ZnO) composite, capable of detecting a varied class of VOCs such as, ammonia, acetone, formaldehyde, methanol, and ethanol. The conductivity of these sensors is evaluated at room temperature and are investigated until saturation. In addition to the final application, this work also focusses on the synthesis strategies to achieve an 'optimal' matrix-to-additive ratio, such that superior chemical response is paralleled with mechanical robustness for PANI based sensors. The PANI/ZnO composites are casted into sensors bearing different additive ratios, via a drop-casting method and the same is evaluated for its formability and mechanical behavior. Physio-chemical characterization was performed using Fourier Transform Infrared Spectroscopy (FTIR), Scanning Electron Microscope (SEM), and Energy Dispersive X-ray Analysis (EDX) and we report on an exceptional selectivity for ammonia with an average sensor response of 3496.67 mV by all the sensors, when fabricated using different matrix-additive ratios. This result is superior to what is observed for Pure- PANI sensors that were selective only to methanol and ethanol. The addition of ZnO in the smallest fraction, already offers a broader range of selectivity, e.g., PANI/ZnO 90:10 sensor was selective to formaldehyde as assessed using pattern recognition.
金属氧化物掺杂的导电聚合物已被作为气体传感领域的传感器进行研究。最近的进展突出了本征导电聚合物的作用,据报道,其对挥发性有机化合物(VOCs)的检测具有高表面响应。在这项工作中,我们优化了由聚苯胺/氧化锌(PANI/ZnO)复合材料制成的气体传感器的开发,该传感器能够检测多种VOCs,如氨、丙酮、甲醛、甲醇和乙醇。这些传感器的电导率在室温下进行评估,并研究至饱和。除了最终应用外,这项工作还专注于合成策略,以实现“最佳”的基体与添加剂比例,从而使基于聚苯胺的传感器在具有优异化学响应的同时兼具机械强度。通过滴铸法将PANI/ZnO复合材料浇铸到具有不同添加剂比例的传感器中,并对其成型性和机械性能进行评估。使用傅里叶变换红外光谱(FTIR)、扫描电子显微镜(SEM)和能量色散X射线分析(EDX)进行了物理化学表征,我们报告称,当使用不同的基体-添加剂比例制造时,所有传感器对氨具有出色的选择性,平均传感器响应为3496.67 mV。这一结果优于纯聚苯胺传感器,后者仅对甲醇和乙醇具有选择性。即使添加最小比例的氧化锌,也能提供更广泛的选择性,例如,使用模式识别评估时,PANI/ZnO 90:10传感器对甲醛具有选择性。