Organic and inorganic nanomaterials: fabrication, properties and applications
Органические и неорганические наноматериалы: получение, свойства и применение
2023-01-01
SCID: 54.1/mf2rdd9d
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Energy storageHybrid structuresNanomaterialsSemiconductor devicesZnO nanostructures
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Abstract (AI)
Nanomaterials and nanoparticles are a burgeoning field of research and a rapidly expanding technology sector in a wide variety of application domains. Nanomaterials have made exponential progress due to their numerous uses in a variety of fields, particularly the advancement of engineering technology. Nanoparticles are divided into various groups based on the size, shape, and structural morphology of their bodies. The 21st century's defining feature of nanoparticles is their application in the design and production of semiconductor devices made of metals, metal oxides, carbon allotropes, and chalcogenides. For the researchers, these materials then opened a new door to a variety of applications, including energy storage, catalysis, and biosensors, as well as devices for conversion and medicinal uses. For chemical and thermal applications, ZnO is one of the most stable n-type semiconducting materials available. It is utilised in a wide range of products, from luminous materials to batteries, supercapacitors, solar cells to biomedical photocatalysis sensors, and it may be found in a number of forms, including pellets, nanoparticles, bulk crystals, and thin films. The distinctive physiochemical characteristics of semiconducting metal oxides are particularly responsible for this. ZnO nanostructures differ depending on the synthesis conditions, growth method, growth process, and substrate type. A number of distinct growth strategies for ZnO nanostructures, including chemical, physical, and biological methods, have been recorded. These nanostructures may be synthesized very simply at very low temperatures. This review focuses on and summarizes recent achievements in fabricating semiconductor devices based on nanostructured materials as 2D materials as well as rapidly developing hybrid structures. Apart from this, challenges and promising prospects in this research field are also discussed.
Key Findings
1
Chemical, physical, and biological strategies enable relatively simple synthesis of ZnO nanostructures at very low temperatures; the review also identifies challenges and prospects for 2D and hybrid nanostructured devices.
2
Nanomaterials and nanoparticles have rapidly expanded across engineering, energy storage, catalysis, biosensing, conversion devices, and medicinal applications.
3
Semiconductor nanomaterials include metals, metal oxides, carbon allotropes, and chalcogenides, enabling diverse device-design and manufacturing applications.
4
ZnO is highlighted as a stable n-type semiconductor used in luminous materials, batteries, supercapacitors, solar cells, sensors, and biomedical photocatalysis.
5
ZnO nanostructure properties and morphologies depend on synthesis conditions, growth methods, growth processes, and substrate types.
Research Object
Organic and inorganic nanomaterials, particularly ZnO nanostructures and hybrid nanostructured materials used in semiconductor devices
Research Subject
Fabrication, physicochemical properties, applications, and recent advances and challenges of nanostructure-based semiconductor devices
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2023-01-01
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