Title :
Overcoming Auger recombination in nanocrystal quantum dots using Purcell enhancement
Author :
Gupta, Shilpi ; Waks, Edo
Author_Institution :
Dept. of Electr. & Comput. Eng., Univ. of Maryland, College Park, TX, USA
Abstract :
Chemically synthesized semiconductor nanocrystal quantum dots (NQDs) are promising candidates for gain media in micro/nano-lasers. The key advantage of using these NQDs is wide-tunability of emission wavelength across the visible and near IR spectrum [1], which is achieved by synthesizing NQDs of different sizes. One well-known decay process, which becomes significant with size reduction in NQDs, is non-radiative Auger recombination, and it has been identified as the main hindrance in achieving lasing with NQDs [2]. Lasing has been demonstrated in a variety of low-loss microcavities with moderate spatial confinement [3][4], by employing close-packed films of NQDs - a way to overcome Auger recombination process. Here we show that by using moderate-loss cavities that provide strong spatial confinement, which results in Purcell enhancement [5], we can overcome Auger recombination process, and achieve efficient lasing with only a few hundreds of NQDs.
Keywords :
Auger effect; electron-hole recombination; infrared spectra; microcavities; microcavity lasers; nanostructured materials; quantum dot lasers; semiconductor quantum dots; visible spectra; Auger recombination process; Purcell enhancement; chemically synthesized semiconductor nanocrystal quantum dots; close-packed films; decay process; emission wavelength; lasing; low-loss microcavities; microlaser; moderate spatial confinement; moderate-loss cavities; nanolaser; near IR spectrum; nonradiative Auger recombination; size reduction; visible spectrum; Cavity resonators; Couplings; Laser excitation; Laser modes; Pump lasers; Radiative recombination;
Conference_Titel :
Semiconductor Device Research Symposium (ISDRS), 2011 International
Conference_Location :
College Park, MD
Print_ISBN :
978-1-4577-1755-0
DOI :
10.1109/ISDRS.2011.6135399