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Environmental pollution, a pressing global concern, is primarily caused by the release of harmful gases. These gases, such as carbon monoxide (CO), carbon dioxide (CO), ammonia (NH), nitrogen oxides (NO, NO), and sulphur dioxide (SO), significantly contribute to climate change, environmental degradation, and adverse health effects. To address this issue, the development of advanced materials is important. In this study, we have theoretically discovered a novel GaN nanoring of high formation energy. After adsorbing these gases onto the surface of the nanoring using GGA-PBE functionals within density functional theory (DFT), we have investigated the adsorption energy, charge density difference, energy gap, projected density of states (PDOS), total density of states (TDOS), and global index parameters. The strong binding between the nanoring and NO, NO, and SO gas molecules is revealed through adsorption energies of -1.75 eV, -2.04 eV, and - 1.01 eV, respectively. Besides, CO gas dissociates on the active side of the nanoring. Further, it is observed that the interactions between CO and NH with nanoring are weaker, suggesting that GaN nanoring may be well-suited for detecting these gases. The GaN nanoring exhibits potential for storing or removing NO, NO, and SO gas molecules from a specific environment, as its high adsorption energy and longer recovery time allows it to effectively bind and retain these molecules, making it a promising candidate for environmental remediation applications.
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http://dx.doi.org/10.1038/s41598-025-06067-w | DOI Listing |
Nanomaterials (Basel)
February 2025
Key Laboratory of Advanced Photonic and Electronic Materials, School of Electronic Science and Engineering, Nanjing University, Nanjing 210093, China.
Energy issues, including energy generation, conversion, transmission and detection, are fundamental factors in all systems. In micro- and nanosystems, dealing with these energy issues requires novel nanostructures and precise technology. However, both concept and setup are not well established yet in the microsystems, especially for those at the nanometer scale.
View Article and Find Full Text PDFPhys Chem Chem Phys
March 2024
School of Chemistry and Environmental Engineering, Changchun University of Science and Technology, 7989 Weixing Road, Changchun 130012, China.
Carbon nanorings have attracted substantial interest from synthetic chemists due to their unique topological structures and distinct physical properties. An intriguing π-conjugated double-nanoring structure, denoted as [8]CPP-[10]cyclacene, was constructed the integration of [8]cycloparaphenylene ([8]CPP) into [10]cyclacene. Using the external electric field stimuli-responsiveness of [8]CPP-[10]cyclacene, directional charge transfer can be induced, resulting in the emergence of intriguing properties.
View Article and Find Full Text PDFMicrosyst Nanoeng
December 2019
1Department of Electrical & Electronic Engineering, University of Bath, Bath, BA2 7AY UK.
Nano-engineering III-nitride semiconductors offers a route to further control the optoelectronic properties, enabling novel functionalities and applications. Although a variety of lithography techniques are currently employed to nano-engineer these materials, the scalability and cost of the fabrication process can be an obstacle for large-scale manufacturing. In this paper, we report on the use of a fast, robust and flexible emerging patterning technique called Displacement Talbot lithography (DTL), to successfully nano-engineer III-nitride materials.
View Article and Find Full Text PDFNano Lett
December 2018
Department of Physics and Institute of Nano Technology , Bar-Ilan University, 5290002 Ramat-Gan , Israel.
Magnetoresistance measurements in a granular Nb nanoring reveal current-induced crossover between two distinct quantum coherence effects. At low bias currents, Cooper-pair coherence is manifested by Little-Parks oscillations with flux periodicity of h/2 e. At high bias currents, magnetoresistance oscillations with flux periods of h/ e are observed and interpreted as Aharonov-Bohm oscillations, reflecting the phase coherence of individual quasi-particles.
View Article and Find Full Text PDFA strong chiral near-field is crucial for the detection of chiral molecules. Active tuning of the chiral near-field can shorten the detection process. In this study, a graphene-based achiral nanoring (GAN) that can actively control chiral near-fields is presented.
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