Nanophotonics with Diamond and Silicon Carbide for Quantum Technologies
Nanophotonics with Diamond and Silicon Carbide for Quantum Technologies provides an in-depth overview of key developments in diamond and silicon carbide photonics to enable spin-photon interfaces, quantum computing, quantum imaging, and quantum sensing. Written by world experts, chapters discuss nanophotonics effects (atomic size point center properties in the materials), fabrication of photonic components and integrated photonics circuits, photonics and nanophotonics enabling quantum sensing, and quantum information and networks via spin-photon interface. This book is a valuable resource to researchers and professionals interested on the fundamentals, trends, and diamond and silicon carbide applications in the quantum technology industry. - Discusses experimental and computational methods needed to approach the fabrication and design of photonics components in diamond and silicon carbide - Describes characterization techniques to test photonics properties and the monolithic integration of atomic point defects within materials' nano- or micro-photonics cavity - Features the methodologies for the fabrication of photonics components, their integration towards wafer scale integrated photonics circuits, and nanophotonic with quantum functionalities
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Nanophotonics with Diamond and Silicon Carbide for Quantum Technologies
Nanophotonics with Diamond and Silicon Carbide for Quantum Technologies provides an in-depth overview of key developments in diamond and silicon carbide photonics to enable spin-photon interfaces, quantum computing, quantum imaging, and quantum sensing. Written by world experts, chapters discuss nanophotonics effects (atomic size point center properties in the materials), fabrication of photonic components and integrated photonics circuits, photonics and nanophotonics enabling quantum sensing, and quantum information and networks via spin-photon interface. This book is a valuable resource to researchers and professionals interested on the fundamentals, trends, and diamond and silicon carbide applications in the quantum technology industry. - Discusses experimental and computational methods needed to approach the fabrication and design of photonics components in diamond and silicon carbide - Describes characterization techniques to test photonics properties and the monolithic integration of atomic point defects within materials' nano- or micro-photonics cavity - Features the methodologies for the fabrication of photonics components, their integration towards wafer scale integrated photonics circuits, and nanophotonic with quantum functionalities
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Nanophotonics with Diamond and Silicon Carbide for Quantum Technologies

Nanophotonics with Diamond and Silicon Carbide for Quantum Technologies

Nanophotonics with Diamond and Silicon Carbide for Quantum Technologies

Nanophotonics with Diamond and Silicon Carbide for Quantum Technologies

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Overview

Nanophotonics with Diamond and Silicon Carbide for Quantum Technologies provides an in-depth overview of key developments in diamond and silicon carbide photonics to enable spin-photon interfaces, quantum computing, quantum imaging, and quantum sensing. Written by world experts, chapters discuss nanophotonics effects (atomic size point center properties in the materials), fabrication of photonic components and integrated photonics circuits, photonics and nanophotonics enabling quantum sensing, and quantum information and networks via spin-photon interface. This book is a valuable resource to researchers and professionals interested on the fundamentals, trends, and diamond and silicon carbide applications in the quantum technology industry. - Discusses experimental and computational methods needed to approach the fabrication and design of photonics components in diamond and silicon carbide - Describes characterization techniques to test photonics properties and the monolithic integration of atomic point defects within materials' nano- or micro-photonics cavity - Features the methodologies for the fabrication of photonics components, their integration towards wafer scale integrated photonics circuits, and nanophotonic with quantum functionalities

Product Details

ISBN-13: 9780443137181
Publisher: Elsevier Science
Publication date: 04/18/2025
Series: Nanophotonics
Sold by: Barnes & Noble
Format: eBook
Pages: 550
File size: 34 MB
Note: This product may take a few minutes to download.

About the Author

Mario Agio studied physics at the University of Pavia, Italy, and Iowa State University, USA, and graduated in 2003 with a thesis on the fundamentals and applications of semiconductor-based photonic crystals. In 2004 he joined the Nano-Optics Group of Prof. Vahid Sandoghdar at ETH Zurich, where his research interests have broadened to single-molecule spectroscopy, near-field optics, and quantum optics. He was awarded the Prize of the Italian Physical Society for graduate students (2002) and the Latsis Prize of ETH Zurich (2010) for his accomplishments in nano optics. In 2011 he received the Habilitation in Physical Chemistry from ETH Zurich, where he has been Privat Dozent until 2016. From 2012 to 2015, he was with the National Institute of Optics (CNR-INO) and the European Laboratory for Nonlinear Spectroscopy (LENS) in Florence, Italy. Since April 2015 he is responsible for the Laboratory of Nano-Optics at the University of Siegen, Germany, and since April 2021 he also holds a part-time appointment with CNR-INO.
Stefania Castelletto is associate professor and deputy associate dean in the School of Engineering at the Royal Melbourne Institute of Technology University in Melbourne, Australia. She holds a Dottorato di Ricerca (PhD equivalent) from the School of Engineering at the Polytechnic of Turin (Italy) and she has a habilitation as Professor of Experimental and Applied Physics from the Italian Ministry of Education and Research. Before her current academic appointment, she covered various research positions as Senior Fellow at Macquarie University (Sydney), Swinburne University of Technology (Melbourne) and The University of Melbourne. She was part of an Australian Research Council Centre of Excellence for engineered quantum systems. Earlier in her career, she was group leader at the Italian National Metrology Research Centre (INRIM) and responsible for the research and development of quantum technologies based on non-classical states of light, such as quantum cryptography and quantum imaging. She has been visiting scientist at the National Institute of Technology and Standards (USA) for two years. Her recent research focus is on color centers in diamond and silicon carbide for applications in quantum sensing, single photon sources and super-resolution imaging.

Table of Contents

1. Introduction2. Diamond growth and properties for quantum technologies3. Micro- and nano-fabrication techniques for single crystal diamond photonics4. Quantum micro–nano devices fabricated in diamond by femtosecond laser and ion irradiation5. Ab-initio simulations of color centers in diamond6. Color centers in diamond for quantum photonics7. Diamond spin-photon interface8. Diamond integrated quantum photonics9. Diamond color centers for enhanced quantum sensing10. Fluorescent Nanodiamonds11. Diamond single photon source for metrology: focus on radiometry and imaging12. Diamond laser threshold magnetometer13. Silicon carbide growth and properties for quantum technologies14. Color centers in silicon carbide15. Defect engineering and charge-state control of color centers in silicon carbide16. Silicon carbide spin-photon interface17. Silicon carbide photonics technologies and fabrication methods18. Quantum nonlinear photonics in silicon carbide19. Electrically driven quantum emitters in diamond and silicon carbide20. Spin defects in silicon carbide for maser applications21. Conclusions and Outlook

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