In response to the urgent need for advanced climate change mitigation tools, this study introduces an innovative CO gas sensor based on p-p-type heterostructures designed for effective operation at room temperature. This sensor represents a significant step forward, utilizing the synergistic effects of p-p heterojunctions to enhance the effective interfacial area, thereby improving sensitivity. The incorporation of CuO nanoparticles and rGO sheets also optimizes gas transport channels, enhancing the sensor's performance. Our CuO/rGO heterostructures, with 5 wt % rGO, have shown a notable maximum response of 39.6-500 ppm of CO at 25 °C, and a low detection limit of 2 ppm, indicating their potential as high-performance, room-temperature CO sensors. The prepared sensor demonstrates long-term stability, maintaining 98% of its initial performance over a 30-day period when tested at 1-day intervals. Additionally, the sensor remains stable under conditions of over 40% relative humidity. Furthermore, a first-principles study provides insights into the interaction mechanisms with CO molecules, enhancing our understanding of the sensor's operation. This research contributes to the development of CO monitoring solutions, offering a practical and cost-effective approach to environmental monitoring in the context of global climate change efforts.
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http://dx.doi.org/10.1021/acssensors.4c01397 | DOI Listing |
ACS Sens
November 2024
Department of Engineering Science, National Cheng Kung University, Tainan 701401, Taiwan.
In response to the urgent need for advanced climate change mitigation tools, this study introduces an innovative CO gas sensor based on p-p-type heterostructures designed for effective operation at room temperature. This sensor represents a significant step forward, utilizing the synergistic effects of p-p heterojunctions to enhance the effective interfacial area, thereby improving sensitivity. The incorporation of CuO nanoparticles and rGO sheets also optimizes gas transport channels, enhancing the sensor's performance.
View Article and Find Full Text PDFChemosphere
May 2023
Sabanci University, SUNUM Nanotechnology Research and Application Center, Tuzla, 34956, Istanbul, Turkey. Electronic address:
Sustainable fabrication of flexible hybrid supercapacitor electrodes is extensively investigated during the current era to solve global energy problems. Herein, we used a cost-effective and efficient electrophoretic deposition (EPD) approach to fabricate a hybrid supercapacitor electrode. ZnO/CuO and ZnO/CuO/rGO heterostructure were prepared by sol-gel synthesis route and were electrophoretically deposited on indium tin oxide (ITO) substrate as a thin uniform layer using 1 V for 20 min at 50 mV/s.
View Article and Find Full Text PDFJ Nanosci Nanotechnol
August 2019
Surface Engineering & Tribology Division, CSIR-Central Mechanical Engineering Research Institute, Durgapur 713209, India.
Three dimensional heterostructure of CuO nanoparticle decorated reduced graphene oxide (rGO) was prepared by a facile and cost-effective technique. The structure and electrochemical properties of the CuO-rGO heterostructure composites were evaluated by various techniques. Transmission electron microscopy image analysis confirmed the presence of CuO nanoparticles onto the surface of the rGO sheets.
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