Matching Items (2)
Filtering by

Clear all filters

148195-Thumbnail Image.png
Description

The colossal global counterfeit market and advances in cryptography including quantum computing supremacy have led the drive for a class of anti-counterfeit tags that are physically unclonable. Dendrites, previously considered an undesirable side effect of battery operation, have promise as an extremely versatile version of such tags, with their fundamental

The colossal global counterfeit market and advances in cryptography including quantum computing supremacy have led the drive for a class of anti-counterfeit tags that are physically unclonable. Dendrites, previously considered an undesirable side effect of battery operation, have promise as an extremely versatile version of such tags, with their fundamental nature ensuring that no two dendrites are alike and that they can be read at multiple magnification scales. In this work, we first pursue a simulation for electrochemical dendrites that elucidates fundamental information about their growth mechanism. We then translate these results into physical dendrites and demonstrate methods of producing a hash from these dendrites that is damage-tolerant for real-world verification. Finally, we explore theoretical curiosities that arise from the fractal nature of dendrites. We find that uniquely ramified dendrites, which rely on lower ion mobility and conductive deposition, are particularly amenable to wavelet hashing, and demonstrate that these dendrites have strong commercial potential for securing supply chains at the highest level while maintaining a low price point.

ContributorsSneh, Tal (Author) / Kozicki, Michael (Thesis director) / Gonzalez-Velo, Yago (Committee member) / School of Molecular Sciences (Contributor) / Department of Physics (Contributor) / Barrett, The Honors College (Contributor)
Created2021-05
131187-Thumbnail Image.png
Description
In 2017 alone, over 250,00 patients died due to medical errors and is the 3rd leading cause of death in America. These errors attributed to incorrect diagnosis and treatment of illnesses can be preventable. The solution to this major issue is the creation of an app called HealthKeep. Primary market

In 2017 alone, over 250,00 patients died due to medical errors and is the 3rd leading cause of death in America. These errors attributed to incorrect diagnosis and treatment of illnesses can be preventable. The solution to this major issue is the creation of an app called HealthKeep. Primary market research done during the first semester of the study included the creation of a school-wide survey across all ASU campuses that consisted of key questions for people of all ages in regards to their healthcare. These questions include how often patients of specific age ranges visit the doctor, their overall experience during appointments, and their attitudes towards the creation of a mobile health application that would be able to tabulate all your medical information neatly and securely. The overwhelming response stated that patient’s from all ranges would be open to the idea of having such an application. Further development included the creation of a business plan and application storyboard used when interviewing potential customers about the application. All of these tools aided in the first entry for Venture Devils in the first semester leading to the disappointing failure of winning funding. However, the feedback on the website created, executive summary, expanded pitch deck, and market research aided in the successful key revisions of the venture during this second semester and has resulted in placement in the final round of Pitch Playoffs where funding can be awarded.
ContributorsSiraj, Salim (Co-author) / Undrill, Grayson (Co-author) / Ott, Madison (Co-author) / Smith, Keaton (Co-author) / Byrne, Jared (Thesis director) / Sebold, Brent (Committee member) / School of Molecular Sciences (Contributor) / Barrett, The Honors College (Contributor)
Created2020-05