physica status solidi (a) · 2017 · 15 citations · 21 references
Cigs Solar CellsQuadrature ComponentsElectrical EngineeringPhotoluminescenceEngineeringOrganic Solar CellRelaxation TimeApplied PhysicsExcess CarriersSemiconductor MaterialPhotovoltaic SystemExcess Carrier LifetimeLuminescence PropertyOptoelectronicsPhotovoltaicsCompound Semiconductor
Excess carrier lifetime plays a crucial role in determining the efficiency of solar cells. In this paper, we use the frequency dependence of inphase and quadrature components of modulated electroluminescence (MEL) to measure the relaxation time (decay) of excess carriers. The advantage of the MEL technique is that the relaxation time is obtained directly from the angular frequency at which the quadrature component peaks. It does not need knowledge of the material parameters like mobility, etc., and can be used for any finished solar cells which have detectable light emission. The experiment is easy to perform with standard electrical equipment. For silicon solar cells, the relaxation time is dominated by recombination and hence, the relaxation time is indeed the excess carrier lifetime. In contrast, for the CIGS solar cells investigated here, the relaxation time is dominated by trapping and emission from shallow minority carrier traps.
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Ronald A. Sinton, Andrés Cuevas · Applied Physics Letters · 1996 · 1.6K citations
Engineering, Quasi-steady-state Photoconductance, Semiconductor Materials +20
John Turkevich · Journal of the American Chemical Society · 1961 · 974 citations
Photoluminescence imaging of silicon wafers
Thorsten Trupke, R.A. Bardos, Martin C. Schubert et al. · Applied Physics Letters · 2006 · 655 citations