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Monocrystalline 1.7-eV MgCdTe solar cells

Monocrystalline 1.7-eV Mg 0.13 Cd 0.87 Te/Mg x Cd 1-x Te (x > 0.13) double-heterostructure (DH) solar cells with varying Mg composition in the barrier layers are grown by molecular beam epitaxy. Furthermore, a Mg 0.13 Cd 0.87 Te/Mg 0.37 Cd 0.63 Te DH solar cell featuring abrupt interfaces between barriers and absorber and the addition of a SiO 2 anti-reflective coating demonstrates open-circuit voltage (V OC ), short-circuit current density (J SC ), fill factor (FF), and device active-area efficiencies up to 1.129 V, 17.3 mA/cm 2 , 77.7% and 15.2%, respectively. The V OC and FF vary oppositely with the Mg x Cd 1-x Te barrier height indicating an optimal design of the MgCdTe DHs as a tradeoff between carrier confinement and carrier transport. Temperature-dependent V OC measurements reveal the majority of carrier recombination in the devices occurs outside the DHs, in the a-Si:H hole-contact layer and at the interface between the a-Si:H layer and the Mg x Cd 1-x Te top barrier at room temperature. Simulation results for the device with the highest efficiency show that the p-type a-Si:H layer and Mg 0.37 Cd 0.63 Te top barrier contribute 1.3 mA/cm 2 and 2.4 mA/cm 2 J SC loss, respectively.

14 SOLAR ENERGY↗

Materials Data on MgCdTe by Materials Project

CdMgTe crystallizes in the monoclinic Cc space group. The structure is three-dimensional. Mg is bonded in a 4-coordinate geometry to two equivalent Cd and two equivalent Te atoms. There are one shorter (2.95 Å) and one longer (3.05 Å) Mg–Cd bond lengths. There are one shorter (2.82 Å) and one longer (2.84 Å) Mg–Te bond lengths. Cd is bonded in a 4-coordinate geometry to two equivalent Mg and two equivalent Te atoms. There are one shorter (2.93 Å) and one longer (2.96 Å) Cd–Te bond lengths. Te is bonded to two equivalent Mg and two equivalent Cd atoms to form corner-sharing TeMg2Cd2 tetrahedra.

36 MATERIALS SCIENCE↗

Analysis of native oxides grown on single-crystal CdTe and MgCdTe

Over the course of CdTe photovoltaics development, many refinements to the device stack have been made. One area of current interest is the back contact interface, where surface passivation is critical to prevent recombination at the interface. One candidate material for achieving strong passivation is TeO 2 . Using scanning transmission electron microscopy, we investigate native oxide formations on CdTe and Mg x Cd 1−x Te substrates to better understand the oxides' chemical composition and the interface they form with the material they are grown on. We find that substoichiometric TeO x forms as a native oxide on CdTe, and on Mg x Cd 1−x Te, we found a MgO native oxide. Some TeO x appeared atop the MgO layer, though it was not consistently present. As a result, the native oxides had preferential interface terminations, with Cd terminations at the CdTe/TeO x interface and Te terminations at the Mg x Cd 1−x Te/MgO interface.

14 SOLAR ENERGY↗