加速度
材料科学
氧化物
电压
摩尔浓度
灵敏度(控制系统)
选择性
金属
分析化学(期刊)
纳米技术
计算机科学
光电子学
电子工程
电气工程
物理
色谱法
化学
经典力学
催化作用
热力学
工程类
生物化学
冶金
作者
Binowesley Ramakrishnan,Kirubaveni Savarimuthu,M Emimal
出处
期刊:Nanotechnology
[IOP Publishing]
日期:2024-11-21
卷期号:36 (9): 095501-095501
标识
DOI:10.1088/1361-6528/ad947e
摘要
Abstract This paper presents the synthesis of mixed metal oxide (BaTiO 3 : ZnO) (B: Z) sensors with various molar ratios using a low-temperature hydrothermal method for dual sensing applications (gas and acceleration). The sensor developed with an equal molar ratio of 1B:1Z, showcases superior performance compared to unmixed and alternative mixed metal oxide sensors. This equilibrium in ratios optimally enhances synergistic effects between elements B and Z, resulting in improved sensing properties. Furthermore, it contributes to structural stability, enhancing performance in gas and acceleration sensing. A decreased band gap of 2.82 eV and a rapid turn-on voltage of 0.18 V were achieved. The acceleration performance of 1B:1Z sensor exhibits a maximum voltage of 2.62 V at a 10 Hz resonant frequency and an output voltage of 2.52 V at 1 g acceleration, achieving an improved sensitivity of 3.889 V g −1 . In addition, the proposed gas shows a notable sensor response of ∼63.45% (CO) and 58.29% (CH 4 ) at 10 ppm with a quick response time of 1.19 s (CO) and 8.69 s (CH 4 ) and recovery time of 2.09 s (CO) and 8.69 s (CH 4 ). Challenges in selectivity are addressed using machine learning, employing various classification algorithms. Linear discriminant analysis achieves superior accuracy in differentiating between CO and CH 4, reaching 96.6% for CO and 74.6% for CH 4 at 10 ppm. Understanding these concentration-dependent trends can guide the optimal use of the sensors in different current applications.
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