logo

EbookBell.com

Most ebook files are in PDF format, so you can easily read them using various software such as Foxit Reader or directly on the Google Chrome browser.
Some ebook files are released by publishers in other formats such as .awz, .mobi, .epub, .fb2, etc. You may need to install specific software to read these formats on mobile/PC, such as Calibre.

Please read the tutorial at this link:  https://ebookbell.com/faq 


We offer FREE conversion to the popular formats you request; however, this may take some time. Therefore, right after payment, please email us, and we will try to provide the service as quickly as possible.


For some exceptional file formats or broken links (if any), please refrain from opening any disputes. Instead, email us first, and we will try to assist within a maximum of 6 hours.

EbookBell Team

Nanophotonics In Iiiv Semiconductors For Integrated Quantum Optical Circuits 1st Edition Nicholas Andrew Wasley Auth

  • SKU: BELL-4340894
Nanophotonics In Iiiv Semiconductors For Integrated Quantum Optical Circuits 1st Edition Nicholas Andrew Wasley Auth
$ 31.00 $ 45.00 (-31%)

4.7

56 reviews

Nanophotonics In Iiiv Semiconductors For Integrated Quantum Optical Circuits 1st Edition Nicholas Andrew Wasley Auth instant download after payment.

Publisher: Springer International Publishing
File Extension: PDF
File size: 5.11 MB
Pages: 129
Author: Nicholas Andrew Wasley (auth.)
ISBN: 9783319015132, 9783319015149, 3319015133, 3319015141
Language: English
Year: 2014
Edition: 1

Product desciption

Nanophotonics In Iiiv Semiconductors For Integrated Quantum Optical Circuits 1st Edition Nicholas Andrew Wasley Auth by Nicholas Andrew Wasley (auth.) 9783319015132, 9783319015149, 3319015133, 3319015141 instant download after payment.

This thesis breaks new ground in the physics of photonic circuits for quantum optical applications. The photonic circuits are based either on ridge waveguides or photonic crystals, with embedded quantum dots providing the single qubit, quantum optical emitters. The highlight of the thesis is the first demonstration of a spin-photon interface using an all-waveguide geometry, a vital component of a quantum optical circuit, based on deterministic single photon emission from a single quantum dot. The work makes a further important contribution to the field by demonstrating the effects and limitations that inevitable disorder places on photon propagation in photonic crystal waveguides, a further key component of quantum optical circuits. Overall the thesis offers a number of highly novel contributions to the field; those on chip circuits may prove to be the only means of scaling up the highly promising quantum-dot-based quantum information technology.

Related Products