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Franco Nori

Researcher at University of Michigan

Publications -  1209
Citations -  79568

Franco Nori is an academic researcher from University of Michigan. The author has contributed to research in topics: Qubit & Quantum. The author has an hindex of 114, co-authored 1117 publications receiving 63808 citations. Previous affiliations of Franco Nori include University of Illinois at Urbana–Champaign & University of Antwerp.

Papers
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The Transcriptional Landscape of the Mammalian Genome

Piero Carninci, +197 more
- 02 Sep 2005 - 
TL;DR: Detailed polling of transcription start and termination sites and analysis of previously unidentified full-length complementary DNAs derived from the mouse genome provide a comprehensive platform for the comparative analysis of mammalian transcriptional regulation in differentiation and development.
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Parity–time-symmetric whispering-gallery microcavities

TL;DR: In this paper, it was shown that coupled optical microcavities bear all the hallmarks of parity-time symmetry; that is, the system dynamics are unchanged by both time-reversal and mirror transformations.
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Quantum Simulation

TL;DR: The main theoretical and experimental aspects of quantum simulation have been discussed in this article, and some of the challenges and promises of this fast-growing field have also been highlighted in this review.
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QuTiP 2: A Python framework for the dynamics of open quantum systems ✩

TL;DR: The Quantum Toolbox in Python as mentioned in this paper has been updated with new features, enhanced performance, and made changes in the API for improved functionality and consistency within the package, as well as increased compatibility with existing conventions used in other scientific software packages for Python.
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Spin-orbit interactions of light

TL;DR: In this paper, the authors provide an overview of the fundamental origins and important applications of the main spin-orbit interaction phenomena in modern optics that play a crucial role at subwavelength scales, including spin-Hall effects in inhomogeneous media and at optical interfaces, spindependent effects in non-paraxial (focused or scattered) fields, spin-controlled shaping of light using anisotropic structured interfaces (metasurfaces).