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Fine Structure and Spin Dynamics of Linearly Polarized Indirect Excitons in Two-Dimensional CdSe/CdTe Colloidal Heterostructures

Pandya, Raj (author)
Univ Cambridge, England
Steinmetz, Violette (author)
Sorbonne Univ, France
Puttisong, Yuttapoom (author)
Linköpings universitet,Biomolekylär och Organisk Elektronik,Tekniska fakulteten
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Dufour, Marion (author)
PSL Res Univ, France
Chen, Weimin (author)
Linköpings universitet,Biomolekylär och Organisk Elektronik,Tekniska fakulteten
Chen, Richard Y. S. (author)
Univ Cambridge, England
Barisien, Thierry (author)
Sorbonne Univ, France
Sharma, Ashish (author)
Univ Sydney, Australia
Lakhwani, Girish (author)
Univ Sydney, Australia
Mitioglu, Anatolie (author)
Radboud Univ Nijmegen, Netherlands
Christianen, Peter C. M. (author)
Radboud Univ Nijmegen, Netherlands
Legrand, Laurent (author)
Sorbonne Univ, France
Bernardot, Frederick (author)
Sorbonne Univ, France
Testelin, Christophe (author)
Sorbonne Univ, France
Chin, Alex W. (author)
Sorbonne Univ, France
Ithurria, Sandrine (author)
PSL Res Univ, France
Chamarro, Maria (author)
Sorbonne Univ, France
Rao, Akshay (author)
Univ Cambridge, England
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 (creator_code:org_t)
2019-09-06
2019
English.
In: ACS Nano. - : AMER CHEMICAL SOC. - 1936-0851 .- 1936-086X. ; 13:9, s. 10140-10153
  • Journal article (peer-reviewed)
Abstract Subject headings
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  • Heterostructured two-dimensional colloidal nanoplatelets are a class of material that has attracted great interest for optoelectronic applications due to their high photoluminescence yield, atomically tunable thickness, and ultralow lasing thresholds. Of particular interest are laterally heterostructured core-crown nanoplatelets with a type-II band alignment, where the in-plane spatial separation of carriers leads to indirect (or charge transfer) excitons with long lifetimes and bright, highly Stokes shifted emission. Despite this, little is known about the nature of the lowest energy exciton states responsible for emission in these materials. Here, using polarization-controlled, steady-state, and time-resolved photoluminescence measurements, at temperatures down to 1.6 K and magnetic fields up to 30 T, we study the exciton fine structure and spin dynamics of archetypal type-II CdSe/CdTe core-crown nanoplatelets. Complemented by theoretical modeling and zero-field quantum beat measurements, we find the bright-exciton fine structure consists of two linearly polarized states with a fine structure splitting similar to 50 mu eV and an indirect exciton Lande g-factor of 0.7. In addition, we show the exciton spin lifetime to be in the microsecond range with an unusual B-3 magnetic field dependence. The discovery of linearly polarized exciton states and emission highlights the potential for use of such materials in display and imaging applications without polarization filters. Furthermore, the small exciton fine structure splitting and a long spin lifetime are fundamental advantages when envisaging CdSe/CdTe nanoplatelets as elementary bricks for the next generation of quantum devices, particularly given their ease of fabrication.

Subject headings

NATURVETENSKAP  -- Fysik -- Den kondenserade materiens fysik (hsv//swe)
NATURAL SCIENCES  -- Physical Sciences -- Condensed Matter Physics (hsv//eng)

Keyword

CdSe/CdTe colloidal nanoplatelets; indirect excitons; high magnetic fields; core-crown heterostructure; spin dynamics; exciton fine structure; exchange interaction

Publication and Content Type

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