Transparent TiO2/MoO3 Heterojunction-Based Photovoltaic Self-Powered Triethylamine Gas Sensor with IoT-Enabled Smartphone Interface

被引:1
|
作者
Ghuge, Rahul Suresh [1 ]
Madhavanunni Rekha, Sreelakshmi [2 ]
Vikraman, Hajeesh Kumar [3 ]
Velappa Jayaraman, Surya [4 ,5 ]
Kiran, Mangalampalli S. R. N. [3 ]
Bhat, S. Venkataprasad [2 ]
Sivalingam, Yuvaraj [1 ,6 ]
机构
[1] SRM Inst Sci & Technol, Dept Phys & Nanotechnol, Lab Sensors Energy & Elect Devices Lab SEED, Kattankulathur 603203, Tamil Nadu, India
[2] SRM Inst Sci & Technol, Dept Phys & Nanotechnol, Green Energy Mat Lab, Kattankulathur 603203, India
[3] SRM Inst Sci & Technol, Dept Phys & Nanotechnol, Nanoindentat Lab, Funct Coatings Mat, Kattankulathur 603203, Tamil Nadu, India
[4] Tohoku Univ, New Ind Creat Hatchery Ctr NICHe, Sendai, Miyagi 9808579, Japan
[5] SRM Inst Sci & Technol, Novel Adv & Appl Mat NAAM Lab, Dept Phys & Nanotechnol, Kattankulathur 603203, Tamil Nadu, India
[6] King Abdullah Univ Sci & Technol KAUST, Comp Elect Math Sci & Engn Div CEMSE, Thuwal 239556900, Saudi Arabia
来源
ACS SENSORS | 2024年
关键词
photovoltaic self-powered gas sensor; TiO2/MoO3; heterojunction; scanning Kelvin probe; contact potential difference; work function; triethylamine sensor prototype; CORE-SHELL NANORODS; P-N HETEROJUNCTION; ROOM-TEMPERATURE; SENSING PROPERTIES; ENERGY-STORAGE; FAST-RESPONSE; PERFORMANCE; MOO3;
D O I
10.1021/acssensors.4c02110
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Conventional gas sensors encounter a significant obstacle in terms of power consumption, making them unsuitable for integration with the next generation of smartphones, wireless platforms, and the Internet of Things (IoT). Energy-efficient gas sensors, particularly self-powered gas sensors, can effectively tackle this problem. The researchers are making significant strides in advancing photovoltaic self-powered gas sensors by employing diverse materials and their compositions. Unfortunately, several of these sensors seem complex in fabrication and mainly target oxidizing species detection. To address these issues, we have successfully employed a transparent, cost-efficient solution processed bilayer TiO2/MoO3 heterojunction-based photovoltaic self-powered gas sensor with superior VOC sensing capabilities, marking a significant milestone in this field. The scanning Kelvin probe (SKP) measurement reveals the remarkable change in contact potential difference (-23 mV/kPa) of the TiO2/MoO3 bilayered film after UV light exposure in a triethylamine (TEA) atmosphere, indicating the highest reactivity between TEA molecules and TiO2/MoO3. Under photovoltaic mode, the sensor further demonstrates exceptional sensitivity (similar to 2.35 x 10-3 ppm-1) to TEA compared to other studied VOCs, with an admirable limit of detection (22 ppm) and signal-to-noise ratio (1540). Additionally, the sensor shows the ability to recognize TEA and estimate its composition in a binary mixture of VOCs from a similar class. The strongest affinity of TiO2/MoO3 toward the TEA molecule, the lowest covalent bond energy, and the highest electron-donating nature of TEA may be mainly attributed to the highest adsorption between TiO2/MoO3 and TEA. We further demonstrate the practical applicability of the TEA sensor with a prototype device connected to a smartphone via the IoT, enabling continuous surveillance of TEA.
引用
收藏
页码:6592 / 6604
页数:13
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