Spin Physics of Excitons in Colloidal Nanocrystals


Cite item

Full Text

Open Access Open Access
Restricted Access Access granted
Restricted Access Subscription Access

Abstract

We present a review of spin-dependent properties of excitons in semiconductor colloidal nanocrystals. The photoluminescences (PL) properties of neutral and charged excitons (trions) are compared. The mechanisms and the polarization of radiative recombination of a “dark” (spin-forbidden) exciton that determines the low-temperature PL of colloidal nanocrystals are discussed in detail. The radiative recombination of a dark exciton becomes possible as a result of simultaneous flips of the surface spin and electron spin in a dark exciton that leads to admixture of bright exciton states. This recombination mechanism is effective in the case of a disordered state of the spin system and is suppressed if the polaron ferromagnetic state forms. The conditions and various mechanisms of formation of the spin polaron state and possibilities of its experimental detection are discussed. The experimental and theoretical studies of magnetic field-induced circular polarization of PL in ensembles of colloidal nanocrystals are reviewed.

About the authors

A. V. Rodina

Ioffe Institute

Author for correspondence.
Email: anna.rodina@mail.ioffe.ru
Russian Federation, St. Petersburg, 194021

A. A. Golovatenko

Ioffe Institute

Email: anna.rodina@mail.ioffe.ru
Russian Federation, St. Petersburg, 194021

E. V. Shornikova

Experimentelle Physik 2; Rzhanov Institute of Semiconductor Physics, Siberian Branch

Email: anna.rodina@mail.ioffe.ru
Germany, Dortmund; Novosibirsk, 630090

D. R. Yakovlev

Ioffe Institute; Experimentelle Physik 2

Email: anna.rodina@mail.ioffe.ru
Russian Federation, St. Petersburg, 194021; Dortmund

Supplementary files

Supplementary Files
Action
1. JATS XML

Copyright (c) 2018 Pleiades Publishing, Ltd.