Home > Research > Publications & Outputs > Rod-type photonic crystals For colloidal quantu...
View graph of relations

Rod-type photonic crystals For colloidal quantum dot light coupling

Research output: Contribution to conference - Without ISBN/ISSN Abstractpeer-review

Published

Standard

Rod-type photonic crystals For colloidal quantum dot light coupling. / Noori, Yasir; Roberts, Jonny; Woodhead, Christopher et al.
2015. Abstract from OWTNM 2015, London, United Kingdom.

Research output: Contribution to conference - Without ISBN/ISSN Abstractpeer-review

Harvard

APA

Vancouver

Author

Bibtex

@conference{dcb42473f9be44279917312971168b58,
title = "Rod-type photonic crystals For colloidal quantum dot light coupling",
abstract = "We present results from rod-type two-dimensional photonic crystals designed to efficiently couple colloidal quantum dots to semiconductor devices. Moderate Q factors for this type of cavities ensure the light-matter coupling remains in the weak regime, making the structures designed suitable for applications requiring bright quantum light sources.",
author = "Yasir Noori and Jonny Roberts and Christopher Woodhead and Matthew Young and Robert Young",
year = "2015",
month = apr,
day = "17",
language = "English",
note = "OWTNM 2015 ; Conference date: 17-04-2015",

}

RIS

TY - CONF

T1 - Rod-type photonic crystals For colloidal quantum dot light coupling

AU - Noori, Yasir

AU - Roberts, Jonny

AU - Woodhead, Christopher

AU - Young, Matthew

AU - Young, Robert

PY - 2015/4/17

Y1 - 2015/4/17

N2 - We present results from rod-type two-dimensional photonic crystals designed to efficiently couple colloidal quantum dots to semiconductor devices. Moderate Q factors for this type of cavities ensure the light-matter coupling remains in the weak regime, making the structures designed suitable for applications requiring bright quantum light sources.

AB - We present results from rod-type two-dimensional photonic crystals designed to efficiently couple colloidal quantum dots to semiconductor devices. Moderate Q factors for this type of cavities ensure the light-matter coupling remains in the weak regime, making the structures designed suitable for applications requiring bright quantum light sources.

M3 - Abstract

T2 - OWTNM 2015

Y2 - 17 April 2015

ER -