The understanding of moisture-induced degradation is one of the major issues towards long-term stability of perovskite solar cells (PSCs) which severely limit their practical use. Herein, the degradation behavior of photovoltaic performance on water ingress of flexible methylammonium lead halide (MAPbI3) PSC mini-modules with 3 x 3 cm2 in size was discussed. For this purpose, the modules proceed the damp-heat (DH) test up to 4650 h at 85 degrees C/85 % relative humidity and water ingress was systematically controlled by varying water vapor transmission rates (WVTRs) of the barrier film from 0.005 to 0.44 g/m2/day. Upon DH testing, the evolution of solar cell parameters revealed that the power conversion efficiency (PCE) was gradually reduced over DH time. Remarkably, encapsulation with barrier films of high WVTRs (0.019-0.44 g/m2/day) caused 'critical failure' of module efficiency, evidently observed at the same level of accumulated water vapor. The phase decomposition emphasized that the critical failure mainly stemmed from the partial formation of intermediate MAPbI3 monohydrate due to the water vapor permeated into encapsulated module, particularly in cases with high WVTRs. This hydrate intermediate accelerated the perovskite decomposition and suddenly reduced its module lifetime. On the other hand, the module encapsulated using a proper barrier film with low WVTR of 0.005 g/m2/day exhibited outstanding module stability by nearly 80 % of PCE upon 2700 h of DH test and no critical failure. This finding demonstrated significant improvement in module durability through the selection of barrier films, thereby extending the device lifetime and enhancing its long-term suitability for the potential application in photovoltaic industry.
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Flexible perovskite solar cell module,Damp-heat test stability,Degradation,Accelerated lifetime testing,Water vapor transmission rate,Methylammonium lead halide (MAPbI3)