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Integration of silicon nanostructures for health and energy applications using MACE: a cost-effective process.
Gupta, Shubham; Mishra, Dhaneshwar; DasMahapatra, Suddhendu; Singh, Kulwant.
Afiliação
  • Gupta S; FlexMEMS Research Centre (FMRC), Manipal University Jaipur, Jaipur, Rajasthan 303007, India.
  • Mishra D; Department of Electronics & Communication Engineering, Manipal University Jaipur, Jaipur, Rajasthan 303007, India.
  • DasMahapatra S; Multiscale Simulation Research Center (MSRC), Manipal University Jaipur, Jaipur, Rajasthan 303007, India.
  • Singh K; Department of Mechanical Engineering, Manipal University Jaipur, Jaipur, Rajasthan 303007, India.
Nanotechnology ; 35(42)2024 Aug 01.
Article em En | MEDLINE | ID: mdl-38897177
ABSTRACT
Silicon in its nanoscale range offers a versatile scope in biomedical, photovoltaic, and solar cell applications. Due to its compatibility in integration with complex molecules owing to changes in charge density of as-fabricated Silicon Nanostructures (SiNSs) to realize label-free and real-time detection of certain biological and chemical species with certain biomolecules, it can be exploited as an indicator for ultra-sensitive and cost-effective biosensing applications in disease diagnosis. The morphological changes of SiNSs modified receptors (PNA, DNA, etc) have huge future scope in optimized sensitivity (due to conductance variations of SiNSs) of target biomolecules in health care applications. Further, due to the unique optical and electrical properties of SiNSs realized using the chemical etching technique, they can be used as an indicator for photovoltaic and solar cell applications. In this work, emphasis is given on different critical parameters that control the fabrication morphologies of SiNSs using metal-assisted chemical etching technique (MACE) and its corresponding fabrication mechanisms focusing on numerous applications in energy storage and health care domains. The evolution of MACE as a low-cost, easy process control, reproducibility, and convenient fabrication mechanism makes it a highly reliable-process friendly technique employed in photovoltaic, energy storage, and biomedical fields. Analysis of the experimental fabrication to obtain high aspect ratio SiNSs was carried out using iMAGEJ software to understand the role of surface-to-volume ratio in effective bacterial interfacing. Also, the role of silicon nanomaterials has been discussed as effective anti-bacterial surfaces due to the presence of silver investigated in the post-fabrication energy dispersive x-ray spectroscopy analysis using MACE.
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Texto completo: 1 Base de dados: MEDLINE Assunto principal: Silício / Nanoestruturas Limite: Humans Idioma: En Ano de publicação: 2024 Tipo de documento: Article

Texto completo: 1 Base de dados: MEDLINE Assunto principal: Silício / Nanoestruturas Limite: Humans Idioma: En Ano de publicação: 2024 Tipo de documento: Article