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A novel electrochemical anodization cell for the synthesis of mesoporous silicon

  • A novel design of an electrochemical anodization cell dedicated to the synthesis of mesoporous, single-crystalline silicon is presented. First and foremost, the design principle follows user safety since electrochemical etching of silicon requires highly hazardous electrolytes based on hydrofluoric (HF) acid. The novel cell design allows for safe electrolyte handling prior, during, and post-etching. A peristaltic pump with HF-resistant fluoroelastomer tubing transfers electrolytes between dedicated reservoirs and the anodization cell. Due to the flexibility of the cell operation, different processing conditions can be realized providing a large parameter range for the attainable sample thickness, its porosity, and the mean pore size. Rapid etching on the order of several minutes to synthesize micrometer-thick porous silicon epilayers on bulk silicon is possible as well as long-time etching with continuous, controlled electrolyte flow for several days to prepare up to 1000 mu m thick self-supporting porous silicon membranes. A highlyA novel design of an electrochemical anodization cell dedicated to the synthesis of mesoporous, single-crystalline silicon is presented. First and foremost, the design principle follows user safety since electrochemical etching of silicon requires highly hazardous electrolytes based on hydrofluoric (HF) acid. The novel cell design allows for safe electrolyte handling prior, during, and post-etching. A peristaltic pump with HF-resistant fluoroelastomer tubing transfers electrolytes between dedicated reservoirs and the anodization cell. Due to the flexibility of the cell operation, different processing conditions can be realized providing a large parameter range for the attainable sample thickness, its porosity, and the mean pore size. Rapid etching on the order of several minutes to synthesize micrometer-thick porous silicon epilayers on bulk silicon is possible as well as long-time etching with continuous, controlled electrolyte flow for several days to prepare up to 1000 mu m thick self-supporting porous silicon membranes. A highly adaptable, LabVIEW((TM))-based control software allows for user-defined etching profiles.show moreshow less

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Author details:Natalia Katarzyna Gostkowska-LeknerORCiDGND, Dirk WallacherORCiDGND, Nico Grimm, Klaus HabichtORCiDGND, Tommy Hofmann
DOI:https://doi.org/10.1063/5.0008536
ISSN:0034-6748
ISSN:1089-7623
Pubmed ID:https://pubmed.ncbi.nlm.nih.gov/33138555
Title of parent work (English):Review of scientific instruments : a monthly journal devoted to scientific instruments, apparatus, and techniques
Publisher:American Institute of Physics
Place of publishing:Melville, NY
Publication type:Article
Language:English
Date of first publication:2020/10/22
Publication year:2020
Release date:2023/05/23
Volume:91
Issue:10
Article number:105113
Number of pages:6
Funding institution:DFG German Research Foundation (DFG)European Commission [402553194]
Organizational units:Mathematisch-Naturwissenschaftliche Fakultät / Institut für Physik und Astronomie
DDC classification:5 Naturwissenschaften und Mathematik / 53 Physik / 530 Physik
Peer review:Referiert
Publishing method:Open Access / Hybrid Open-Access
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