High-Performance Computing for Theoretical Study of Nanoscale and Molecular Interconnects

High-Performance Computing for Theoretical Study of Nanoscale and Molecular Interconnects

Rasit O. Topaloglu, Swati R. Manjari, Saroj K. Nayak
Copyright: © 2014 |Pages: 20
ISBN13: 9781466651258|ISBN10: 1466651253|EISBN13: 9781466651265
DOI: 10.4018/978-1-4666-5125-8.ch021
Cite Chapter Cite Chapter

MLA

Topaloglu, Rasit O., et al. "High-Performance Computing for Theoretical Study of Nanoscale and Molecular Interconnects." Nanotechnology: Concepts, Methodologies, Tools, and Applications, edited by Information Resources Management Association, IGI Global, 2014, pp. 513-532. https://doi.org/10.4018/978-1-4666-5125-8.ch021

APA

Topaloglu, R. O., Manjari, S. R., & Nayak, S. K. (2014). High-Performance Computing for Theoretical Study of Nanoscale and Molecular Interconnects. In I. Management Association (Ed.), Nanotechnology: Concepts, Methodologies, Tools, and Applications (pp. 513-532). IGI Global. https://doi.org/10.4018/978-1-4666-5125-8.ch021

Chicago

Topaloglu, Rasit O., Swati R. Manjari, and Saroj K. Nayak. "High-Performance Computing for Theoretical Study of Nanoscale and Molecular Interconnects." In Nanotechnology: Concepts, Methodologies, Tools, and Applications, edited by Information Resources Management Association, 513-532. Hershey, PA: IGI Global, 2014. https://doi.org/10.4018/978-1-4666-5125-8.ch021

Export Reference

Mendeley
Favorite

Abstract

Interconnects in semiconductor integrated circuits have shrunk to nanoscale sizes. This size reduction requires accurate analysis of the quantum effects. Furthermore, improved low-resistance interconnects need to be discovered that can integrate with biological and nanoelectronic systems. Accurate system-scale simulation of these quantum effects is possible with high-performance computing (HPC), while high cost and poor feasibility of experiments also suggest the application of simulation and HPC. This chapter introduces computational nanoelectronics, presenting real-world applications for the simulation and analysis of nanoscale and molecular interconnects, which may provide the connection between molecules and silicon-based devices. We survey computational nanoelectronics of interconnects and analyze four real-world case studies: 1) using graphical processing units (GPUs) for nanoelectronic simulations; 2) HPC simulations of current flow in nanotubes; 3) resistance analysis of molecular interconnects; and 4) electron transport improvement in graphene interconnects. In conclusion, HPC simulations are promising vehicles to advance interconnects and study their interactions with molecular/biological structures in support of traditional experimentation.

Request Access

You do not own this content. Please login to recommend this title to your institution's librarian or purchase it from the IGI Global bookstore.