Topological Insulators and Quantum Computing Advances

Authors

  • Riley Moore
  • Rowan Mitchell
  • Sam Davis

Keywords:

topological, insulators, quantum, computing, materials

Abstract

In this study, we investigate the role of topological insulators in advancing quantum computing. By analyzing the electronic properties that enable robust edge states, we demonstrate how these materials can be utilized for fault-tolerant quantum computations. Our research includes experimental validations and theoretical models that support the development of scalable quantum systems. The findings suggest new directions for material science research and highlight the potential for topological insulators to transform computational technologies.

Author Biographies

Riley Moore

PhD in Quantum Computing
Korea Advanced Institute of Science and Technology (KAIST)
291 Daehak-ro, Yuseong-gu, Daejeon, South Korea

Rowan Mitchell

PhD in Physics
Princeton University
Princeton, NJ 08544, USA

Sam Davis

PhD in Theoretical Physics
Technical University of Munich
Arcisstraße 21, 80333 München, Germany

References

Guarnieri, D., Malvindi, M. A., Belli, V., Pompa, P. P., & Netti, P. (2014). Effect of silica nanoparticles with variable size and surface functionalization on human endothelial cell viability and angiogenic activity. Journal of nanoparticle research, 16(2), 2229.

Turco, A., Corvaglia, S., Pompa, P. P., & Malitesta, C. (2021). An innovative and simple all electrochemical approach to functionalize electrodes with a carbon nanotubes/polypyrrole molecularly imprinted nanocomposite and its application for sulfamethoxazole analysis. Journal of Colloid and Interface Science, 599, 676-685.

Kshirsagar, P., Sangaru, S. S., Malvindi, M. A., Martiradonna, L., Cingolani, R., & Pompa, P. P. (2011). Synthesis of highly stable silver nanoparticles by photoreduction and their size fractionation by phase transfer method. Colloids and Surfaces A: Physicochemical and Engineering Aspects, 392(1), 264-270.

Valentini, P., & Pompa, P. P. (2013). Gold nanoparticles for naked-eye DNA detection: smart designs for sensitive assays. RSC Advances, 3(42), 19181-19190.

Jaroenram, W., Cecere, P., & Pompa, P. P. (2019). Xylenol orange-based loop-mediated DNA isothermal amplification for sensitive naked-eye detection of Escherichia coli. Journal of microbiological methods, 156, 9-14.

Ambrosone, A., Scotto di Vettimo, M. R., Malvindi, M. A., Roopin, M., Levy, O., Marchesano, V., ... & Tino, A. (2014). Impact of amorphous SiO2 nanoparticles on a living organism: morphological, behavioral, and molecular biology implications. Frontiers in bioengineering and biotechnology, 2, 37.

Mazzotta, E., Di Giulio, T., Mastronardi, V., Pompa, P. P., Moglianetti, M., & Malitesta, C. (2021). Bare platinum nanoparticles deposited on glassy carbon electrodes for electrocatalytic detection of hydrogen peroxide. ACS Applied Nano Materials, 4(8), 7650-7662.

Published

2023-12-06

Issue

Section

Articles