CuMoO4 nanorods-based acetone chemiresistor-enabled non-invasive breathomic-diagnosis of human diabetes and environmental monitoring

被引:30
作者
Mathur, Maikesh [1 ]
Verma, Arpit [1 ]
Singh, Ajeet [1 ]
Yadav, B. C. [1 ]
Chaudhary, Vishal [2 ]
机构
[1] Babasaheb Bhimrao Ambedkar Univ, Dept Phys, Nanomat & Sensors Res Lab, Lucknow 226025, UP, India
[2] Univ Delhi, Bhagini Nivedita Coll, Phys Dept, New Delhi 110043, India
关键词
VOCs; CuMoO4; nanorods; Hydrothermal synthesis; Acetone sensor; Diabetes monitoring; POLYACRYLAMIDE; NANOSCIENCE; NANOCAGES;
D O I
10.1016/j.envres.2023.115931
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
A nano-enabled low-trace monitoring system for acetone has the potential to revolutionize breath omics-based non-invasive diagnosis of human diabetes and environmental monitoring technologies. This unprecedented study presents the state-of-the-art facile and economic template-assisted hydrothermal route to fabricate novel CuMoO4 nanorods for room temperature breath and airborne acetone detection. Physicochemical attribute analysis reveals the formation of crystalline CuMoO4 nanorods with diameters ranging from 90 to 150 nm, and an optical band gap of approximately 3.87 eV. CuMoO4 nanorods-based chemiresistor demonstrates excellent acetone monitoring performance, with a sensitivity of approximately 33.85 at a concentration of 125 ppm. Acetone detection is rapid, with a response time of 23 s and fast recovery within 31 s. Furthermore, the chemiresistor exhibits long-term stability and selectivity towards acetone, compared to other interfering volatile organic compounds (VOCs) commonly found in human breath such as ethanol, propanol, formaldehyde, humidity, and ammonia. The linear detection range of acetone from 25 to 125 ppm achieved by the fabricated sensor is well-suited for human breath-based diagnosis of diabetes. This work represents a significant advancement in the field, as it offers a promising alternative to time-consuming and costly invasive biomedical diagnostics, with the potential for application in cleanroom facilities for indoor contamination monitoring. The utilization of CuMoO4 nanorods as sensing nanoplatform opens new possibilities for the development of nanoenabled, low-trace acetone monitoring technologies for non-invasive diabetes diagnosis and environmental sensing applications.
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页数:10
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