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  4. Ligand Coupling Symmetry Correlates with Thermopower Enhancement in Small-Molecule/Nanocrystal Hybrid Materials
 
research article

Ligand Coupling Symmetry Correlates with Thermopower Enhancement in Small-Molecule/Nanocrystal Hybrid Materials

Lynch, Jared
•
Kotiuga, Michele
•
Doan-Nguyen, Vicky V. T.
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2014
ACS Nano

The authors study the impact of the coupling symmetry and chem. nature of org.-inorg. interfaces on thermoelec. transport in Cu2-xSe nanocrystal thin films. By coupling ligand-exchange techniques with layer-by-layer assembly methods, the authors are able to systematically vary nanocrystal-org. linker interfaces, demonstrating how the functionality of the polar headgroup and the coupling symmetry of the org. linkers can change the power factor (S2σ) by nearly 2 orders of magnitude. Remarkably, ligand-coupling symmetry has a profound effect on thermoelec. transport in these hybrid materials. The authors shed light on these results using intuition from a simplified model for interparticle charge transport via tunneling through the frontier orbital of a bound ligand. The authors' anal. indicates that ligand-coupling symmetry and binding mechanisms correlate with enhanced cond. approaching 2000 S/cm, and the authors employ this concept to demonstrate among the highest power factors measured for quantum-dot based thermoelec. inorg.-org. composite materials of ∼30 μW/m·K2.

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Type
research article
DOI
10.1021/nn503972v
Author(s)
Lynch, Jared
Kotiuga, Michele
Doan-Nguyen, Vicky V. T.
Queen, Wendy L.  
Forster, Jason D.
Schlitz, Ruth A.
Murray, Christopher B.
Neaton, Jeffrey B.
Chabinyc, Michael L.
Urban, Jeffrey J.
Date Issued

2014

Published in
ACS Nano
Volume

8

Start page

10528

End page

10536

Subjects

quantum dot thermoelec inorg org composite ligand coupling symmetry

Editorial or Peer reviewed

REVIEWED

Written at

OTHER

EPFL units
LFIM  
Available on Infoscience
February 23, 2017
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/134733
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