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Lattice-Mismatched Monolithic GAAS/INGAAS Two-Junction Solar Cells by Direct Wafer Bonding

机译:通过直接晶圆键合的晶格失配的整体式GAAS / INGAAS两结太阳能电池

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Direct bonded interconnect between subcells of a lattice-mismatched III-V compound multijunction cell would enable dislocation-free active regions by confining the defect network needed for lattice mismatch accommodation to tunnel junction interfaces, while metamorphic growth inevitably results in less design flexibility and lower material quality than is desirable. The first direct-bond interconnected multijunction solar cell, a two-terminal monolithic GaAs/InGaAs two-junction solar cell, is reported and demonstrates viability of direct wafer bonding for solar cell applications. The tandem cell open-circuit voltage was approximately the sum of the subcell open-circuit voltages. This achievement shows direct bonding enables us to construct lattice-mismatched III-V multijunction solar cells and is extensible to an ultrahigh efficiency InGaP/GaAs/InGaAsP/InGaAs four-junction cell by bonding a GaAs-based lattice-matched InGaP/GaAs subcell and an InP-based lattice-matched InGaAsP/InGaAs subcell. The interfacial resistance experimentally obtained for bonded GaAs/InP smaller than 0.10 Ohm-cm2 would result in a negligible decrease in overall cell efficiency of ~0.02%, under 1-sun illumination
机译:晶格不匹配的III-V复合多结电池的子电池之间的直接键合互连通过将晶格失配容纳到隧道结界面所需的缺陷网络而限制了位错,从而实现了无位错有源区,而变质生长不可避免地导致了设计灵活性的降低和材料的减少质量超出期望。据报道,第一个直接键合互连多结太阳能电池是一个两端单片GaAs / InGaAs两结太阳能电池,它证明了直接晶片键合在太阳能电池应用中的可行性。串联电池开路电压约为子电池开路电压之和。这一成就表明,直接键合使我们能够构建晶格不匹配的III-V多结太阳能电池,并通过键合基于GaAs的晶格匹配的InGaP / GaAs子电池和可扩展至超高效InGaP / GaAs / InGaAsP / InGaAs四结电池,从而扩展了超高效率InGaP / GaAs / InGaAsP / InGaAs四结电池。一个基于InP的晶格匹配InGaAsP / InGaAs子单元。通过实验获得的键合GaAs / InP小于0.10 Ohm-cm 2 的界面电阻,在1阳光照射下,导致整体电池效率降低约0.02%,几乎可以忽略不计

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