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1.
Opt Express ; 20 Suppl 4: A452-64, 2012 Jul 02.
Article in English | MEDLINE | ID: mdl-22828614

ABSTRACT

A hybrid approach for light trapping using photonic crystal nanostructures (nanorods, nanopillars or nanoholes) on top of an ultra thin film as a substrate is presented. The combination of a nanopatterned layer with a thin substrate shows an enhanced optical absorption than equivalent films without patterning and can compete in performance with nanostructured systems without a substrate. The designs are tested in four relevant materials: amorphous silicon (a-Si), crystalline silicon (Si), gallium arsenide (GaAs) and indium phosphide (InP). A consistent enhancement is observed for all of the materials when using a thin hybrid system (300 nm) even compared to the non patterned thin film with an anti-reflective coating (ARC). A realistic solar cell structure composed of a hybrid system with a layer of indium tin oxide (ITO) an ARC and a back metal layer is performed, showing an 18% of improvement for the nanostructured device.

2.
Opt Express ; 20(7): 7901-14, 2012 Mar 26.
Article in English | MEDLINE | ID: mdl-22453464

ABSTRACT

The spontaneous emission rate and Purcell factor of self-assembled quantum wires embedded in photonic crystal micro-cavities are measured at 80 K by using micro-photoluminescence, under transient and steady state excitation conditions. The Purcell factors fall in the range 1.1 - 2 despite the theoretical prediction of ≈15.5 for the figure of merit. We explain this difference by introducing a polarization dependence on the cavity orientation, parallel or perpendicular with respect to the wire axis, plus spectral and spatial detuning factors for the emitters and the cavity modes, taking in account the finite size of the quantum wires.


Subject(s)
Arsenicals/chemistry , Indium/chemistry , Nanoparticles/chemistry , Phosphines/chemistry , Surface Plasmon Resonance/instrumentation , Equipment Design , Equipment Failure Analysis , Miniaturization , Nanoparticles/ultrastructure
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